US20180281221A1 - Slit-cutting device - Google Patents
Slit-cutting device Download PDFInfo
- Publication number
- US20180281221A1 US20180281221A1 US15/718,167 US201715718167A US2018281221A1 US 20180281221 A1 US20180281221 A1 US 20180281221A1 US 201715718167 A US201715718167 A US 201715718167A US 2018281221 A1 US2018281221 A1 US 2018281221A1
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- United States
- Prior art keywords
- holder
- medium
- cutting edge
- slit
- blade
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
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Images
Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D11/00—Combinations of several similar cutting apparatus
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41J—TYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
- B41J11/00—Devices or arrangements of selective printing mechanisms, e.g. ink-jet printers or thermal printers, for supporting or handling copy material in sheet or web form
- B41J11/66—Applications of cutting devices
- B41J11/70—Applications of cutting devices cutting perpendicular to the direction of paper feed
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D1/00—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor
- B26D1/01—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work
- B26D1/04—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a linearly-movable cutting member
- B26D1/06—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a linearly-movable cutting member wherein the cutting member reciprocates
- B26D1/08—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a linearly-movable cutting member wherein the cutting member reciprocates of the guillotine type
- B26D1/085—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a linearly-movable cutting member wherein the cutting member reciprocates of the guillotine type for thin material, e.g. for sheets, strips or the like
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D1/00—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor
- B26D1/01—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work
- B26D1/12—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis
- B26D1/25—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member
- B26D1/26—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member moving about an axis substantially perpendicular to the line of cut
- B26D1/30—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member moving about an axis substantially perpendicular to the line of cut with limited pivotal movement to effect cut
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D1/00—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor
- B26D1/01—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work
- B26D1/12—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis
- B26D1/25—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member
- B26D1/26—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member moving about an axis substantially perpendicular to the line of cut
- B26D1/30—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member moving about an axis substantially perpendicular to the line of cut with limited pivotal movement to effect cut
- B26D1/305—Cutting through work characterised by the nature or movement of the cutting member or particular materials not otherwise provided for; Apparatus or machines therefor; Cutting members therefor involving a cutting member which does not travel with the work having a cutting member moving about an axis with a non-circular cutting member moving about an axis substantially perpendicular to the line of cut with limited pivotal movement to effect cut for thin material, e.g. for sheets, strips or the like
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D3/00—Cutting work characterised by the nature of the cut made; Apparatus therefor
- B26D3/08—Making a superficial cut in the surface of the work without removal of material, e.g. scoring, incising
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D3/00—Cutting work characterised by the nature of the cut made; Apparatus therefor
- B26D3/08—Making a superficial cut in the surface of the work without removal of material, e.g. scoring, incising
- B26D3/085—On sheet material
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26F—PERFORATING; PUNCHING; CUTTING-OUT; STAMPING-OUT; SEVERING BY MEANS OTHER THAN CUTTING
- B26F1/00—Perforating; Punching; Cutting-out; Stamping-out; Apparatus therefor
- B26F1/18—Perforating by slitting, i.e. forming cuts closed at their ends without removal of material
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H18/00—Winding webs
- B65H18/08—Web-winding mechanisms
- B65H18/10—Mechanisms in which power is applied to web-roll spindle
- B65H18/103—Reel-to-reel type web winding and unwinding mechanisms
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H20/00—Advancing webs
- B65H20/02—Advancing webs by friction roller
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H35/00—Delivering articles from cutting or line-perforating machines; Article or web delivery apparatus incorporating cutting or line-perforating devices, e.g. adhesive tape dispensers
- B65H35/04—Delivering articles from cutting or line-perforating machines; Article or web delivery apparatus incorporating cutting or line-perforating devices, e.g. adhesive tape dispensers from or with transverse cutters or perforators
- B65H35/06—Delivering articles from cutting or line-perforating machines; Article or web delivery apparatus incorporating cutting or line-perforating devices, e.g. adhesive tape dispensers from or with transverse cutters or perforators from or with blade, e.g. shear-blade, cutters or perforators
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H37/00—Article or web delivery apparatus incorporating devices for performing specified auxiliary operations
- B65H37/04—Article or web delivery apparatus incorporating devices for performing specified auxiliary operations for securing together articles or webs, e.g. by adhesive, stitching or stapling
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H39/00—Associating, collating, or gathering articles or webs
- B65H39/16—Associating two or more webs
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D7/00—Details of apparatus for cutting, cutting-out, stamping-out, punching, perforating, or severing by means other than cutting
- B26D2007/0012—Details, accessories or auxiliary or special operations not otherwise provided for
- B26D2007/005—Details, accessories or auxiliary or special operations not otherwise provided for cutters, e.g. guillotines, used in a label maker or printer
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H2301/00—Handling processes for sheets or webs
- B65H2301/50—Auxiliary process performed during handling process
- B65H2301/51—Modifying a characteristic of handled material
- B65H2301/515—Cutting handled material
- B65H2301/5152—Cutting partially, e.g. perforating
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H2403/00—Power transmission; Driving means
- B65H2403/50—Driving mechanisms
- B65H2403/53—Articulated mechanisms
- B65H2403/533—Slotted link mechanism
- B65H2403/5332—Slotted link mechanism with rotating slotted link
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H2701/00—Handled material; Storage means
- B65H2701/10—Handled articles or webs
- B65H2701/12—Surface aspects
- B65H2701/121—Perforations
- B65H2701/1211—Perforations arranged linearly
- B65H2701/12112—Perforations arranged linearly transversally
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65H—HANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
- B65H2701/00—Handled material; Storage means
- B65H2701/10—Handled articles or webs
- B65H2701/18—Form of handled article or web
- B65H2701/184—Wound packages
- B65H2701/1848—Dimensional aspect
- B65H2701/18482—Proportion
- B65H2701/18485—Diameter much smaller than width
Definitions
- the disclosure relates to a slit-cutting device.
- Known cutting devices include a plate to which a medium may contact and a blade that may face the plate.
- the cutting devices cut a medium incompletely or completely using the plate and blade.
- Cutting includes half cutting and full cutting. In half cutting, the cutting devices cut incompletely a medium located between the blade and plate, in a medium thickness direction, to form a non-penetrating slit in the medium. In full cutting, the cutting devices cut completely the medium located between the blade and plate, in the medium thickness direction, to divide the medium into two portions.
- Some of the known cutting devices includes a cutting blade for performing half cutting on a tape, which is an example of the medium, and a movable blade for performing full cutting on the tape. The cutting blade and the movable blade are disposed next to each other in a direction in which the tape is conveyed.
- some embodiments of the disclosure provide for a slit-cutting device that may cut a slit line including both a non-penetrating slit and a penetrating slit, into a medium in a single slit-cutting operation.
- a slit-cutting device includes a first holder, a second holder, a first contactable member, a second contactable member, and a protrusion member.
- the first holder includes a medium faceable area.
- the second holder holds a blade.
- a cutting edge of the blade may cut a medium between the first holder and the blade.
- the first holder includes a first contactable member.
- the second holder includes a second contactable member.
- the first contactable member and the second contactable member contact each other and defined a closest approach distance between the cutting edge and the first holder.
- the closest approach distance is greater than 0 and below a thickness of the medium.
- the protrusion member protrudes more than the closest approach distance from a part of the medium faceable area.
- the cutting edge may make a cut line includes at least a part of a slit-cut and a full-cut in a cutting edge direction in the medium.
- FIG. 1 is a perspective view of a printer and a data generating device in a first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 2 is a left side view of an internal configuration of the printer in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 3 is a sectional view of a multi-layered sheet in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 4 is a front view of a slit-cutting device when a blade is located at a non-cutting position in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 5 is a perspective view of protrusions in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 6 is a front view of the slit-cutting device when the blade is located at a cutting position in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 7 is a top view of the multi-layered sheet having a slit line formed in a slit-cutting operation performed by the slit-cutting device in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 8 is a sectional view taken along line I-I of the multi-layered sheet when viewed in an arrow direction in the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 9 is a front view of a slit-cutting device in a variation of the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 10 is a front view of the slit-cutting device in another state in the variation of the first illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 11 is a front view of a slit-cutting device when a blade is located at a non-cutting position in a second illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 12 is a perspective view of a protrusion in the second illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 13 is a front view of the slit-cutting device when the blade is located at a cutting position in the second illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 14 is a top view of a multi-layered sheet having a slit line formed in a slit-cutting operation performed by the slit-cutting device in the second illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 15 is a front view of a slit-cutting device when a blade is located at a non-cutting position in a third illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 16 is a front view of the slit-cutting device when the blade is located at a cutting position in the third illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 17 is a front view of a slit-cutting device when a blade is located at a non-cutting position in a variation of the third illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 18 is a front view of the slit-cutting device when the blade is located at a cutting position in the variation of the third illustrative embodiment according to one or more aspects of the disclosure.
- FIG. 19 is a front view of a slit-cutting device in another variation of the first illustrative embodiment according to one or more aspects of the disclosure.
- a slit-cutting device 100 according to a first illustrative embodiment will be described with reference to the accompanying drawings.
- the slit-cutting device 100 is included in a printer 1 .
- directions, e.g., top, bottom, right, left, front and rear, indicated by arrows in each drawing may be defined as orientation of the printer 1 that may be disposed in which it may be intended to be used as depicted in FIG. 1 .
- the printer 1 of FIG. 1 is configured to print an image, e.g., characters, letters, figures, and/or symbols, on a medium.
- the printer 1 may be electrically connected to a data generating device 2 via a connector 4 .
- the data generating device 2 is configured to operate in response to a user's operation.
- the data generating device 2 generates image data representing an image to be printed, and transmits the generated image data to the printer 1 .
- the data generating device 2 transmits also a print instruction and a slit-cutting operation start instruction to the printer 1 via the connector 4 .
- the print instruction may be an instruction for printing an image onto a medium.
- the slit-cutting operation start instruction may be an instruction for moving a blade toward the printed medium.
- moving the blade toward a medium may enable to both half cutting for cutting one or more non-penetrating slits in the medium and full cutting for cutting one or more penetrating slits in the medium in a single slit-cutting operation.
- half cutting the blade cuts a medium incompletely in a medium thickness direction.
- the blade cuts one or more non-penetrating slits in the medium.
- Non-penetrating slits penetrate partway in the medium but do not penetrate through the medium in the medium thickness direction.
- full cutting the blade cuts a medium completely in the medium thickness direction. In other words, the blade cuts one or more penetrating slits in the medium.
- a medium may be a multi-layered sheet 24 including an outer layer sheet 8 and a double-sided adhesive sheet 13 (refer to FIG. 3 ).
- the multi-layered sheet 24 may have a width of 5 cm or less in the right-left direction.
- a medium to be used in the printer 1 may be a sheet consisting of a single layer or a sheet having a width of greater than 5 cm.
- the printer 1 includes a hollow case 5 .
- the case 5 includes an accommodating portion 17 to or from which a tape cassette 7 is attachable or detachable in the right-left direction.
- the tape cassette 7 includes therein a tape spool, a ribbon supply spool 11 , a ribbon take-up spool 12 , a base supply spool 15 , and a sheet bonding roller 16 .
- the tape spool has the transparent outer layer sheet 8 , e.g., polyethylene terephthalate (“PET”) film, wound therearound.
- PET polyethylene terephthalate
- the ribbon supply spool 11 has an ink ribbon 10 wound therearound.
- the ribbon take-up spool 12 is configured to wind the ink ribbon 10 therearound.
- the base supply spool 15 has a double-sided adhesive sheet 13 wound therearound.
- the sheet bonding roller 16 is rotatably disposed.
- the double-sided adhesive sheet 13 has multiple layers, for example, at least two layers (refer to FIG. 3 ).
- the double-sided adhesive sheet 13 includes a base layer 13 A, adhesive layers 13 B, and a release material layer 13 C.
- the adhesive layers 13 B are positioned on respective surfaces of the base layer 13 A.
- the release material layer 13 C is adhered to the adhesive layer 13 B positioned on one of the surfaces of the base layer 13 A.
- the release material layer 13 C is outside and the base layer 13 A is inside.
- the double-sided adhesive sheet 13 may be adhered to the outer layer sheet 8 via the exposed adhesive layer 13 B after drawn from the base supply spool 15 .
- the printer 1 further includes a thermal head 18 and a roller holder 20 in the accommodating portion 17 .
- the printer 1 further includes a drive motor 25 in the vicinity of the accommodating portion 17 .
- the thermal head 18 may be a plate-like member having a plurality of heating elements.
- the roller holder 20 holds a platen roller 21 and a conveyance roller 22 rotatably.
- the ribbon take-up spool 12 , the conveyance roller 22 , and the sheet bonding roller 16 rotate in synchronization with each other by driving of the drive motor 25 . Simultaneously with this, the heating elements of the thermal head 18 generate heat.
- the platen roller 21 and the thermal head 18 sandwich the ink ribbon 10 and the outer layer sheet 8 therebetween.
- Ink 23 included in the ink ribbon 10 is transferred to a lower surface of the outer layer sheet 8 by heating of the heating elements of the thermal head 18 .
- an image is printed on the outer layer sheet 8 .
- the outer layer sheet 8 having the printed image is conveyed by rotation of the conveyance roller 22 and the sheet bonding roller 16 and rotation of the platen roller 21 that rotates following the rotation of the conveyance roller 22 and the sheet bonding roller 16 .
- the conveyance roller 22 and the sheet bonding roller 16 sandwich the outer layer sheet 8 and the double-sided adhesive sheet 13 therebetween.
- the printer 1 forms a multi-layered sheet 24 having the printed image. Subsequent to this, the multi-layered sheet 24 is conveyed to the slit-cutting device 100 .
- the multi-layered sheet 24 has the printed image, for example, “ABC”, as letters (refer to FIG. 7 ).
- the multi-layered sheet 24 may pass through a discharge port 27 of the case 5 .
- the ribbon take-up spool 12 , the sheet bonding roller 16 , and the conveyance roller 22 are connected to the drive motor 25 disposed in the case 5 . Therefore, the conveyance roller 22 may convey the multi-layered sheet 24 in cooperation with the sheet bonding roller 16 .
- a direction in which the multi-layered sheet 24 is conveyed between the conveyance roller 22 and the discharge port 27 corresponds to the front-rear direction.
- a thickness direction of the multi-layered sheet 24 corresponds to the top-bottom direction and a width direction of the multi-layered sheet 24 (also simply referred to as a medium width direction) corresponds to the right-left direction.
- the release material layer 13 C is positioned below the base layer 13 A and the outer layer sheet 8 is positioned above the base layer 13 A (refer to FIG. 3 ).
- the printer 1 further includes a full-cutting device 85 between the conveyance roller 22 and the discharge port 27 .
- the full-cutting device 85 is configured to cut the multi-layered sheet 24 completely in the medium thickness direction across the multi-layered sheet 24 with respect to the medium width direction to divide the multi-layered sheet 24 into two portions, i.e., to separate a portion of the multi-layered sheet 24 from the remainder of the multi-layered sheet 24 .
- the full-cutting device 85 includes a fixed blade 81 and a movable blade 82 .
- the fixed blade 81 is disposed below a path in which the multi-layered sheet 24 moves.
- the fixed blade 81 is fixed to the inside of the case 5 with its upper edge being sharpened for cutting.
- the movable blade 82 is disposed above the fixed blade 81 and the path in which where the multi-layered sheet 24 moves.
- the movable blade 82 is configured to move up and down relative to the fixed blade 81 .
- the movable blade 82 is connected to a lever disposed at the case 5 with its lower edge being sharpened for cutting.
- the cutting edges of the fixed blade 81 and the movable blade 82 each extend in the right-left direction and have a length greater than the width of the multi-layered sheet 24 .
- the movable blade 82 is configured to move downward toward the fixed blade 81 in response to a user's operation for moving the lever.
- the full-cutting device 85 cuts the multi-layered sheet 24 completely in the medium thickness direction along the entire width of the multi-layered sheet 24 by pinching the multi-layered sheet 24 between the lower cutting edge of the movable blade 82 and the upper cutting edge of the fixed blade 81 .
- the slit-cutting device 100 is configured to cut a slit line into the multi-layered sheet 24 .
- Cutting a slit line into the multi-layered sheet 24 may include cutting a slit line that extends between ends of the multi-layered sheet 24 with respect to the medium width direction and includes both of one or more non-penetrating slits and one or more penetrating slits, into the multi-layered sheet 24 in a single slit-cutting operation
- the slit-cutting device 100 is disposed between the full-cutting device 85 and the discharge port 27 .
- the slit-cutting device 100 includes a first holder 70 , a first contactable portion 91 (e.g., an area of first holder 70 is an example of a “contactable member”), and a cutting unit 80 .
- the first holder 70 is fixed to the inside of the case 5 (refer to FIG. 2 ).
- the first holder 70 may be made of metallic material.
- the first holder 70 has a medium faceable area 75 .
- the medium faceable area 75 may be a flat surface that defines a portion of an upper end surface of the first holder 70 and extend both in the right-left direction and in the front-rear direction.
- the first holder 70 preferably has a flat surface that is longer than a second holder 49 in the front-rear direction so as to enable a cutting edge 41 to stably contact the multi-layered sheet 24 facing the medium faceable area 75 .
- the medium faceable area 75 may face a portion of the multi-layered sheet 24 between the full-cutting device 85 and the discharge port 27 when the multi-layered sheet 24 is located above the medium faceable area 75 . More specifically, the medium faceable area 75 may face the release material layer 13 C (refer to FIG. 3 ) of the multi-layered sheet 24 .
- the thickness direction of the multi-layered sheet 24 corresponds to the top-bottom direction and the width direction of the multi-layered sheet 24 corresponds to the right-left direction.
- the medium faceable area 75 has substantially the same width in the right-left direction as the width of the multi-layered sheet 24 .
- the first contactable portion 91 is included in the first holder 70 .
- the first contactable portion 91 defines another portion of the upper end surface of the first holder 70 . More specifically, the first contactable portion 91 defines the portion that is positioned to the left of the medium faceable area 75 in the upper end surface of the first holder 70 .
- the first contactable portion 91 is flush with the medium faceable area 75 in the top-bottom direction.
- a plurality of protrusions 77 are disposed at the medium faceable area 75 .
- each of the protrusions 77 may be a plate-shaped member extending both in the right-left direction and in the front-rear direction.
- the protrusions 77 may be made of material that may deform when a blade 46 contacts thereto.
- Each of the protrusions 77 may be, for example, a laminated tape.
- Each of the protrusions 77 is adhered to a respective portion of the medium faceable area 75 .
- the protrusions 77 may be made of other material if the protrusions 77 are deformable when the blade 46 contacts thereto.
- the protrusions 77 may be made of resin material, e.g., sponge or rubber.
- three protrusions 77 are spaced from each other at regular intervals in the right-left direction.
- the intervals between protrusions 77 may be, for example, 24 mm or shorter.
- the intervals between protrusions 77 may be a maximum distance that a particular area of the multi-layered sheet 24 between adjacent protrusions 77 can be applied with an appropriate degree of force from the cutting edge 41 .
- a protruding amount of each protrusion 77 that protrudes upward from the medium faceable area 75 corresponds to a dimension L 1 of FIG. 5 .
- the central protrusion 77 may face a middle portion of a bottom surface of the multi-layered sheet 24 in the medium width direction.
- the right and left protrusions 77 each have a first end 77 A outside the medium faceable area 75 and a second end 77 B inside the medium faceable area 75 .
- the right protrusion 77 is disposed such that one end (e.g., a right end) of the multi-layered sheet 24 may face the right protrusion 77 .
- the first end 77 A (e.g., the right end) is positioned further to the right than the right end of the multi-layered sheet 24 and outside the width range of the multi-layered sheet 24
- the second end 77 B (e.g., the left end) is positioned further to the left than the right end of the multi-layered sheet 24 and inside the width range of the multi-layered sheet 24 .
- the left protrusion 77 is disposed such that the other end (e.g., a left end) of the multi-layered sheet 24 may face the left protrusion 77 .
- the first end 77 A (e.g., the left end) is positioned further to the left than the left end of the multi-layered sheet 24 and outside the width range of the multi-layered sheet 24
- the second end 77 B (e.g., the right end) is positioned further to the right than the left end of the multi-layered sheet 24 and inside the width range of the multi-layered sheet 24 .
- the cutting unit 80 includes a support shaft 47 , a second holder 49 , the blade 46 , a second contactable portion 61 (e.g., an area of second holder 49 is an example of a “contactable member”), and a power transmission unit 52 .
- the support shaft 47 is disposed such that its axis extends along the front-rear direction.
- the support shaft 47 has one end portion that is connected to the second holder 49 , and the other end portion that is positioned in the inside of the case 5 (refer to FIG. 2 ).
- the other end portion of the support shaft 47 positioned at the case 5 is slidably engaged with a hole provided in the inside of the case 5 .
- the support shaft 47 supports the second holder 49 so as to be pivotable. That is, the support shaft 47 supports the second holder 49 such that the second holder 49 is movable relative to the first holder 70 . More specifically, the one end portion of the support shaft 47 is fixed to the second holder 49 . Nevertheless, in other embodiments, for example, the other end portion of the support shaft 47 may be fixed to the inside of the case 5 and the one end portion of the support shaft 47 may be engaged with a hole of the second holder 49 so as to be slidable.
- a direction in which the second holder 49 pivots on the support shaft 47 may simply refer to a circumferential direction of the support shaft 47 .
- the second holder 49 has an elongated hole 45 .
- the elongated hole 45 is elongated in a direction orthogonal to the front-rear direction.
- the elongated hole 45 is engaged with a pin 44 .
- the blade 46 is supported by the second holder 49 .
- the blade 46 has a hole at a substantially central portion thereof.
- the second holder 49 includes a projection that protrudes in the front-rear direction.
- the projection of the second holder 49 is engaged with the hole of the blade 46 to retain the blade 46 relative to the second holder 49 .
- the blade 46 is made of material that is harder than the protrusions 77 .
- the blade 46 may be a plate-shaped member made of metallic material.
- the blade 46 has a cutting edge 41 sharpened in a V-shape for cutting.
- the cutting edge 41 extends linearly in the right-left direction and has a length no shorter than the width of the multi-layered sheet 24 (e.g., the dimension of the multi-layered sheet 24 in the right-left direction).
- the support shaft 47 is positioned on an extension of the cutting edge 41 .
- the support shaft 47 is disposed to one side of the cutting edge 41 with respect to a direction in which the cutting edge 41 extends.
- Portions of the cutting edge 41 may face the respective protrusions 77 in the circumferential direction of the support shaft 47 and other portions of the cutting edge 41 may face the medium faceable area 75 in the circumferential direction of the support shaft 47 . That is, the cutting edge 41 may face at least both the medium faceable area 75 and the protrusions 77 in the circumferential direction of the support shaft 47 .
- the second contactable portion 61 is included in the second holder 49 .
- the second holder 49 includes a protruding portion that protrudes relative to the cutting edge 41 .
- the protruding portion is disposed opposite to the support shaft 47 relative to the blade 46 .
- the protruding portion includes the second contactable portion 61 at its protruding end.
- the second contactable portion 61 is a flat surface extending in the front-rear direction and in the right-left direction. The second contactable portion 61 may contact the first contactable portion 91 in the circumferential direction of the support shaft 47 .
- the second contactable portion 61 may be disposed at any location that is outside, in the right-left direction, at least a range in which the cutting edge 41 may face the multi-layered sheet 24 in the circumferential direction of the support shaft 47 .
- the power transmission unit 52 includes a gear 53 and a motor 51 .
- the gear 53 is configured to rotate on a shaft extending along the front-rear direction.
- the gear 53 includes the pin 44 extending in the front-rear direction.
- the pin 44 is engaged with the elongated hole 45 of the second holder 49 slidably relative to the elongated hole 45 .
- the motor 51 is connected to the gear 53 via a gear train 56 . With this configuration, in response to rotation of the gear 53 by driving of the motor 51 , the pin 44 causes the second holder 49 to pivot on the support shaft 47 . In response to pivoting of the second holder 49 , the blade 46 moves pivotably.
- the blade 46 is configured to move pivotably between a non-cutting position (refer to FIG.
- the cutting edge 41 is located above and spaced from the first holder 70 .
- the first contactable portion 91 of the first holder 70 does not contact the second contactable portion 61 of the second holder 49 .
- the cutting edge 41 contacts the protrusions 77 and faces the medium faceable area 75 with a slight clearance left between the cutting edge 41 and the medium faceable area 75 .
- the first contactable portion 91 of the first holder 70 is in contact with the second contactable portion 61 of the second holder 49 .
- the distance to the blade 46 from the first holder 70 is determined at the cutting position when the second contactable portion 61 and the first contactable portion 91 are in contact with each other.
- the first distance may be a distance to the first contactable portion 91 from the medium faceable area 75 in a direction in which the cutting edge 41 and the medium faceable area 75 face each other when the first contactable portion 91 and the second contactable portion 61 are in contact with each other.
- the first distance may be represented by a positive or negative real number. Positive represents a direction from the medium faceable area 75 toward the cutting edge 41 , and negative represents its opposite direction. In the first illustrative embodiment, the first distance is 0 (zero).
- the second distance may be a distance to the second contactable portion 91 from the cutting edge 41 in the direction in which the cutting edge 41 and the medium faceable area 75 face each other when the first contactable portion 91 and the second contactable portion 61 are in contact with each other.
- the second distance may be represented by a positive or negative real number. Positive represents a direction from the cutting edge 41 toward the medium faceable area 75 , and negative represents its opposite direction.
- the second distance is represented by a positive real number and corresponds to a dimension E 2 of FIG. 6 .
- the closest approach distance may be a shortest distance between the cutting edge 41 and the medium faceable area 75 when the first contactable portion 91 and the second contactable portion 61 are in contact with each other.
- the closest approach distance may be a value represented by a sum of the first distance and the second distance. The sum of the first distance and the second distance is greater than 0 (zero). Therefore, in the first illustrative embodiment, the closest approach distance corresponds to the distance E 2 of FIG. 6 .
- the closest approach distance may be less than a thickness of the multi-layered sheet 24 (e.g., a dimension T 1 of FIG. 3 ). In the first illustrative embodiment, for example, the closest approach distance is equal to or less than a thickness (e.g., a dimension T 2 of FIG. 3 ) of the release material layer 13 C (refer to FIG. 3 ).
- the closest approach distance is equal to or less than the protruding amount of each protrusion 77 .
- the slit-cutting device 100 performs a slit-cutting operation subsequent to completion of a printing operation performed by the printer 1 .
- the blade 46 is located at the non-cutting position (refer to FIG. 4 ) initially.
- the multi-layered sheet 24 is hatched.
- the multi-layered sheet 24 is also hatched.
- the protrusions 77 are filled with solid black.
- FIGS. 7 and 8 illustrate the multi-layered sheet 24 having a slit line formed in a slit-cutting operation.
- the cutting pattern or the types of cut slits to be formed in the multi-layered sheet 24 in a slit-cutting operation is not limited to those illustrated in FIGS. 7 and 8 .
- the blade 46 pivotally moves toward the first holder 70 from the non-cutting position (refer to an arrow H in FIG. 4 ) in accordance with pivoting of the second holder 49 by driving of the motor 51 .
- a portion, which is close to the support shaft 47 (e.g., a right end portion in the right-left direction) sandwiches a portion of the multi-layered sheet 24 in cooperation with the right protrusion 77 .
- a middle portion of the cutting edge 41 in the right-left direction sandwiches another portion of the multi-layered sheet 24 in cooperation with the central protrusion 77 .
- the right end portion of the cutting edge 41 penetrates through the multi-layered sheet 24 at a location where the right end portion of the cutting edge 41 and the right protrusion 77 face each other. Then, a portion, which is distant from the support shaft 47 (e.g., a left end portion in the right-left direction), of the cutting edge 41 sandwiches the other portion of the multi-layered sheet 24 in cooperation with the left protrusion 77 .
- the cutting edge 41 penetrates into the multi-layered sheet 24 toward the medium faceable area 75 at a location between the right protrusion 77 and the central protrusion 77 in the right-left direction. Similar to this, the cutting edge 41 penetrates into the multi-layered sheet 24 toward the medium faceable area 75 at another location between the central protrusion 77 and the left protrusion 77 in the right-left direction. Then, the left end portion of the cutting edge 41 penetrates through the multi-layered sheet 24 at another location where the left end portion of the cutting edge 41 and the left protrusion 77 face each other. Thus, a slit line including both non-penetrating slits and penetrating slits is cut into the multi-layered sheet 24 across the multi-layered sheet 24 with respect to the medium width direction.
- the blade 46 further pivotally moves to the cutting position.
- the blade 46 is positioned at the cutting position through contacting of the second contactable portion 61 and the first contactable portion 91 each other.
- the motor 51 stops driving for moving the second holder 49 .
- the cutting edge 41 extends in the right-left direction at substantially the same level in the top-bottom direction as the axis of the support shaft 47 while being located above the medium faceable area 75 .
- each of the blade 46 , the protrusions 77 , and the multi-layered sheet 24 when the blade 46 has reached the cutting position will be described.
- the protruding amount (e.g., the dimension L 1 of FIG. 5 ) of each protrusion 77 is greater than or equal to the closest approach distance.
- the cutting edge 41 has cut the entire thickness of the multi-layered sheet 24 at three locations where the cutting edge 41 faces the protrusions 77 , and penetrates in the protrusions 77 . That is, the cutting edge 41 has cut the entire thickness of the outer layer sheet 8 , the base layer 13 A, the adhesive layers 13 B, and the release material layer 13 C of the multi-layered sheet 24 at the particular locations where the cutting edge 41 faces the protrusions 77 .
- an upper surface of each of the protrusions 77 has been deformed in response to penetration of the blade 46 such that its portion to which the cutting edge 41 contacts is depressed or cut.
- the upper surface of each of the protrusions 77 may be elastically or plastically deformable.
- the closest approach distance is equal to or less than the thickness of the release material layer 13 C and is greater than 0 (zero).
- the cutting edge 41 penetrates in the multi-layered sheet 24 at locations where no protrusion 77 is provided at the first holder 70 and the cutting edge 41 does not face the protrusions 77 , and more specifically, at a location between the right protrusion 77 and the central protrusion 77 and a location between the central protrusion 77 and the left protrusion 77 in the right-left direction. In other words, the cutting edge 41 penetrates only partial thickness of the release material layer 13 C of the multi-layered sheet 24 at those locations.
- the cutting edge 41 pinches the multi-layered sheet 24 in cooperation with the medium faceable area 75 and has cut the multi-layered sheet 24 incompletely in the medium thickness direction at two locations where the cutting edge 41 and the medium faceable area 75 face each other. More specifically, for example, the cutting edge 41 has cut the entire thickness of the outer layer sheet 8 , the base layer 13 A, and the adhesive layers 13 B, but has cut the partial thickness of the release material layer 13 C, e.g., only an upper portion of the release material layer 13 C in the medium thickness direction.
- a slit line including both penetrating slits 28 and non-penetrating slits 29 has cut alternately in the multi-layered sheet 24 across the multi-layered sheet 24 with respect to the medium width direction.
- Penetrating slits 28 are cut slits that completely penetrate or penetrate through the multi-layered sheet 24 in the medium thickness direction.
- Non-penetrating slits 29 are cut slits that incompletely penetrate or penetrate partway in the multi-layered sheet 24 in the medium thickness direction.
- three penetrating slits 28 are cut in the multi-layered sheet 24 .
- One of the penetrating slits 28 is formed in a middle portion of the multi-layered sheet 24 in the medium width direction and the others of the penetrating slits 28 are formed in respective end portions of the multi-layered sheet 24 in the medium width direction.
- two non-penetrating slits 28 are cut in the multi-layered sheet 24 .
- Each of the non-penetrating slits 28 is formed between adjacent two of the penetrating slits 28 in the medium width direction.
- the full-cutting device 85 cuts the multi-layered sheet 24 completely in the medium thickness direction along the entire width of the multi-layered sheet 24 by pinching the multi-layered sheet 24 between the lower cutting edge of the movable blade 82 and the upper cutting edge of the fixed blade 81 .
- the full-cutting device 85 might not necessarily be operated manually by the user.
- the full-cutting device 85 may be configured to move the movable blade 82 automatically to separate a portion of the multi-layered sheet 24 from the remainder by driving of the motor 51 subsequent to completion of the slit-cutting operation performed by the slit-cutting device 100 .
- the range in which the second holder 49 supported by the support shaft 47 moves relative to the first holder 70 corresponds to the range in which the cutting edge 41 moves closer to or away from the multi-layered sheet 24 .
- the closest approach distance e.g., the dimension E 2 of FIG. 6
- the thickness of the multi-layered sheet 24 is a length of the multi-layered sheet 24 in a direction defined the closest approach distance when t the multi-layered sheet 24 is between the first holder 70 and the second holder 49 .
- the protruding amount e.g., the dimension L 1 of FIG.
- each protrusion 77 is greater than or equal to the closest approach distance. Therefore, when the blade 46 reaches the cutting position, penetrating slits are cut into the multi-layered sheet 24 at respective locations where the cutting edge 41 faces the protrusions 77 and non-penetrating slits are cut into the multi-layered sheet 24 at the other locations where the cutting edge 41 faces the medium faceable area 75 . Thus, in a single slit-cutting operation, one or more non-penetrating slits and one or more penetrating slits are both formed in the multi-layered sheet 24 along the cutting edge 41 of the blade 46 located at the cutting position.
- the first illustrative embodiment may implement the slit-cutting device 100 that may cut, into the multi-layered sheet 24 , a predetermined slit line including both a non-penetrating slit and a penetrating slit, across the multi-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation.
- the right protrusion 77 is disposed at a position where the right end the multi-layered sheet 24 may face.
- the left protrusion 77 is disposed at a position where the left end the multi-layered sheet 24 may face.
- This configuration may therefore enable the slit-cutting device 100 to cut a penetrating slit into each end portion of the multi-layered sheet 24 in the right-left direction (e.g., in the medium width direction).
- the user may put a fingertip at one of the penetrating slits formed in the respective end portions of the multi-layered sheet 24 in the right-left direction to remove the outer layer sheet 8 and the base layer 13 A from the release material layer 13 C.
- Such a multi-layered sheet 24 may therefore enable the user to easily remove the outer layer sheet 8 and the base layer 13 A from the release material layer 13 C.
- the right end of the multi-layered sheet 24 is positioned between the first end 77 A and the second end 77 B of the right protrusion 77 in the right-left direction. That is, the right protrusion 77 has a surface that continuously extends between a particular position, which is to the left of the right end of the multi-layered sheet 24 within the medium faceable area 75 , and another particular position, which is to the right of the right end of the multi-layered sheet 24 out of the medium faceable area 75 .
- the left end of the multi-layered sheet 24 is positioned between the first end 77 A and the second end 77 B of the left protrusion 77 in the right-left direction. That is, the left protrusion 77 has a surface that continuously extends between a particular position, which is to the right of the left end of the multi-layered sheet 24 within the medium faceable area 75 , and another particular position, which is to the left of the right end of the multi-layered sheet 24 out of the medium faceable area 75 .
- This configuration may therefore the blade 46 that pivotally moves toward the cutting position to cut a penetrating slit into each end portion of the multi-layered sheet 24 in the medium width direction readily and reliably.
- the closest approach distance may be a value represented by a sum of the first distance and the second distance.
- the closest approach distance may be allowed to be set to a value that is greater than 0 (zero) and smaller than the thickness of the multi-layered sheet 24 .
- the slit-cutting device 100 having such a configuration may also cut a non-penetrating slit into the multi-layered sheet 24 reliably.
- the first contactable portion 91 and the second contactable portion 61 are both disposed opposite to the support shaft 47 with respect to the cutting edge 41 .
- This configuration may decrease a reaction force to be received by the support shaft 47 in response to contact of the second contactable portion 61 to the first contactable portion 91 as compared with a case where the first contactable portion 91 and the second contactable portion 61 are both disposed on the same side at the side where the support shaft 47 is disposed with respect to the cutting edge 41 .
- the closest approach distance is equal to or less than the thickness of the release material layer 13 C. Therefore, the slit-cutting device 100 may reliably cut the entire thickness of both of the outer layer sheet 8 and the base layer 13 A to form a non-penetrating slit 29 .
- the orientation of the printer 1 when used is not limited to the orientation of the printer 1 of FIG. 1 .
- the printer 1 including the slit-cutting device 100 may be oriented when used such that the right side surface or the left side surface of the case 5 may contact a horizontal plane.
- the tape cassette 7 may be oriented such that its surface extending both in the top-bottom direction and in the right-left direction in FIG. 1 may face the horizontal plane, and the tape cassette 7 may be attachable to and detachable from the accommodating portion 17 in the top-bottom direction.
- the width direction of the multi-layered sheet 24 may correspond to the top-bottom direction and the thickness direction of the multi-layered sheet 24 may correspond to the right-left direction.
- the medium faceable area 75 of the first holder 70 and the protrusions 77 may be disposed so as to extend along the top-bottom direction.
- the second holder 49 may be configured to pivot in the circumferential direction of the support shaft 47 such that the cutting edge 41 of the blade 46 moves toward the medium faceable area 75 .
- the multi-layered sheet 24 drawn from the tape cassette 7 may be positioned between the medium faceable area 75 and the cutting edge 41 while the width direction of the multi-layered sheet 24 corresponds to the top-bottom direction.
- the release material layer 13 C of the multi-layered sheet 24 may face the medium faceable area 75 .
- the cutting edge 41 may contact the multi-layered sheet 24 .
- the cutting edge 41 may press the multi-layered sheet 24 to contact the release material layer 13 C to the protrusions 77 disposed at the medium faceable area 75 .
- the slit-cutting device 100 may cut, into the multi-layered sheet 24 , a predetermined slit line including non-penetrating slits and penetrating slits, across the multi-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation.
- the first holder 70 of the slit-cutting device 100 might not necessarily be fixed to the case 5 .
- the first holder 70 may be supported inside the case 5 so as to be movable relative to the second holder 49 .
- the first holder 70 and the second holder 49 may be both supported inside the case 5 so as to be movable relative to a conveyance path of the multi-layered sheet 24 .
- the protrusions 77 may be made of resin, e.g., urethane or silicone, or may be made of fabric.
- the first contactable portion 91 and the second contactable portion 61 may be disposed on the same side as the side where the support shaft 47 is disposed, with respect to the direction in which the cutting edge 41 extends.
- the first holder 70 may be configured to pivot on another shaft (not illustrated) extending parallel to the support shaft 47 . In this case, the first holder 70 may be connected to another motor (hereinafter, referred to as a specific motor) instead to the motor 51 (refer to FIG. 4 ).
- the specific motor and the motor 51 may drive in synchronization with each other to pivot the first holder 70 and the second holder 49 , respectively, in a direction in which the first holder 70 and the second holder 49 .
- This configuration may enable the slit-cutting device 100 to perform a slit-cutting operation on the multi-layered sheet 24 .
- the slit-cutting device 101 includes a support member (for instance, support shaft 47 ), a second holder 59 , a first contactable portion 92 , and a first holder 71 , a second contactable portion 62 .
- the support member is fixed to the inside of the case 5 .
- the multi-layered sheet 24 may be positioned with its outer layer sheet 8 facing the support member. That is, the multi-layered sheet 24 may be positioned upside down as compared with the multi-layered sheet 24 positioned in the slit-cutting device 100 .
- the support member is configured to support the multi-layered sheet 24 from below with contacting the outer layer sheet 8 .
- a thickness direction of the multi-layered sheet 24 corresponds to the top-bottom direction and a width direction of the multi-layered sheet 24 corresponds to the right-left direction.
- the second holder 59 is fixed to the inside of the case 5 .
- the second holder 59 supports a blade 46 .
- the blade 46 has a cutting edge 41 at its upper edge.
- the cutting edge 41 extends linearly in the right-left direction.
- the cutting edge 41 may contact the outer layer sheet 8 of the multi-layered sheet 24 supported by the support member along a direction in which the cutting edge 41 extends.
- the second holder 59 includes a protruding portion at its left end portion.
- the protruding portion protrudes relative to the cutting edge 41 and includes the second contactable portion 62 at its protruding end.
- the second contactable portion 62 is a flat surface extending in the front-rear direction and in the right-left direction.
- the first holder 71 is pivotably supported by the support shaft 47 that is positioned at a right end portion of the first holder 71 . That is, the first holder 71 is movable relative to the second holder 59 .
- the first holder 71 has an elongated hole (not illustrated).
- the pin 44 (refer to FIG. 4 ) is engaged with the elongated hole of the first holder 71 so as to be slidable relative to the elongated hole. This configuration may enable the first holder 71 to pivot on the support shaft 47 by driving of the motor 51 (refer to FIG. 4 ).
- the first holder 71 has a medium faceable area 75 at one end surface thereof that may be a leading end surface when the first holder 71 pivots on the support shaft 47 in a counterclockwise direction when viewed in the axial direction of the support shaft 47 .
- the medium faceable area 75 may face the release material layer 13 C of the multi-layered sheet 24 supported by the support member.
- a plurality of, for example, two protrusions 77 are disposed at the medium faceable area 75 .
- the protrusion 77 e.g., the right protrusion 77 ) positioned closer to the support shaft 47 than the other protrusion 77 may face the right end of the multi-layered sheet 24 .
- the other protrusion e.g., the left protrusion 77 positioned farther from the support shaft 47 than the one protrusion 77 may face the left end of the multi-layered sheet 24 .
- a protruding amount of each protrusion 77 that protrudes from the medium faceable area 75 toward the cutting edge 41 corresponds to the protruding amount of each protrusion 77 of the slit-cutting device 100 (e.g., the dimension L 1 of FIG. 5 ).
- the first contactable portion 92 is included in the first holder 71 .
- the first contactable portion 92 is a recessed portion that is recessed relative to the medium faceable area 75 .
- An absolute value of the first distance may be a shortest distance between an extension of the medium faceable area 75 of the first holder 71 and the first contactable portion 92 , and correspond to a dimension F 1 .
- An absolute value of the second distance may be a shortest distance between an extension of the cutting edge 41 of the blade 46 of the second holder 59 and the second contactable portion 62 , and correspond to a dimension F 2 .
- a closest approach distance may be a shortest distance between the medium faceable area 75 and the cutting edge 41 when the first contactable portion 92 and the second contactable portion 62 are in contact with each other.
- the closest approach distance may correspond to a dimension F 3 .
- the first distance is represented by a negative real number
- the second distance is represented by a positive real number.
- the closest approach distance may be a value represented by a sum of the first distance and the second distance.
- the closest approach distance may be equal to or less than a thickness of the release material layer 13 C (refer to FIG. 3 ) of the multi-layered sheet 24 .
- the closest approach distance in the slit-cutting device 101 is equal to the closest approach distance in the slit-cutting device 100 (e.g., the dimension E 1 of FIG. 6 ).
- the first holder 71 pivots on the support shaft 47 toward the blade 46 by driving of the motor 51 (refer to FIG. 4 ).
- the blade 46 reaches the cutting position and the motor 51 stops driving for pivoting the first holder 71 .
- the protruding amount of each protrusion 77 from the medium faceable area 75 is greater than or equal to the closest approach distance.
- the cutting edge 41 and the protrusions 77 pinch the multi-layered sheet 24 therebetween and thus a penetrating slit is cut into the multi-layered sheet 24 at each location where the cutting edge 41 and a corresponding one of the protrusions 77 face each other. In this state, the cutting edge 41 penetrates into the protrusions 77 .
- the closest approach distance is less than the thickness of the multi-layered sheet 24 .
- the slit-cutting device 101 may cut, into the multi-layered sheet 24 , a predetermined slit line including both a non-penetrating slit and penetrating slits, across the multi-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation.
- a slit-cutting device 200 according to a second illustrative embodiment will be described. An explanation will be given mainly for the parts different from the slit-cutting device 100 of the first illustrative embodiment, and an explanation will be omitted for the common components by assigning the same reference numerals thereto.
- the slit-cutting device 200 includes a protrusion 78 instead of the protrusions 77 .
- the protrusion 78 is disposed at a substantially middle portion of a medium faceable area 75 of a first holder 70 in the right-left direction.
- the medium faceable area 75 may face end portions of the multi-layered sheet 24 in the medium width direction.
- the protrusion 78 includes a plurality of, for example, two walls 79 .
- the walls 79 extend along the right-left direction.
- the walls 79 are spaced from each other to define therebetween a predetermined area 75 A in the medium faceable area 75 and are disposed next to each other in the front-rear direction.
- the predetermined area 75 A is included in the medium faceable area 75 .
- the predetermined area 75 A may face a middle portion of the cutting edge 41 that moves pivotably in the circumferential direction of the support shaft 47 .
- a protruding amount of the protrusion 78 that protrudes from the medium faceable area 75 toward the cutting edge 41 corresponds to a dimension L 2 in FIG. 12 .
- the protruding amount of the protrusion 78 corresponds to a height of the walls 79 .
- Each of the walls 79 has an upper end surface 79 A and side end surfaces 79 B.
- the upper end surface 79 A may face and contact a middle portion of the release material layer 13 C (refer to FIG. 3 ) in the medium width direction.
- the side end surfaces 79 B are disposed to the respective sides of the upper end surface 79 A in each wall 79 B in the right-left direction.
- the side end surfaces 79 B extend diagonally downward from the upper end surface 79 A in opposite directions with respect to the right-left direction.
- the slit-cutting device 200 includes a first contactable portion 93 instead of the first contactable portion 91 of the first illustrative embodiment.
- the first holder 70 includes a protruding portion disposed to the left of the medium faceable area 75 .
- the protruding portion protrudes relative to the medium faceable area 75 .
- the protruding portion includes the first contactable portion 93 at its protruding end.
- the first contactable portion 93 is a flat surface extending in the front-rear direction and in the right-left direction.
- the slit-cutting device 200 further includes a second contactable portion 63 instead of the second contactable portion 61 of the first illustrative embodiment.
- the second contactable portion 63 is included in a second holder 49 .
- the second contactable portion 63 is a flat surface that is disposed opposite to the first holder 70 relative to the cutting edge 41 in the circumferential direction of the support shaft 47 .
- the second contactable portion 63 may face the first contactable portion 93 in the circumferential direction of the support shaft 47 .
- An absolute value of the first distance may be a shortest distance between an extension of the medium faceable area 75 of the first holder 70 and the first contactable portion 93 , and correspond to a dimension G 1 .
- An absolute value of the second distance may be a shortest distance between an extension of the cutting edge 41 of the blade 46 of the second holder 49 and the second contactable portion 63 , and correspond to a dimension G 2 .
- a closest approach distance may be a shortest distance between the medium faceable area 75 and the cutting edge 41 when the first contactable portion 93 and the second contactable portion 63 are in contact with each other.
- the closest approach distance corresponds to a dimension G 3 .
- the first distance is represented by a positive real number
- the second distance is represented by a negative real number.
- the closest approach distance may be a value greater than 0 (zero) which is represented by a sum of the first distance and the second distance.
- the closest approach distance may be equal to or less than a thickness of the release material layer 13 C (refer to FIG. 3 ) of the multi-layered sheet 24 .
- the closest approach distance is less than the protruding amount of each wall 79 from the medium faceable area 79 (e.g., the dimension L 2 of FIG. 12 ).
- the blade 46 and the second holder 49 pivot on the support shaft 47 toward the first holder 70 (e.g., an arrow H of FIG. 11 ) by driving of the motor 51 (refer to FIG. 4 ).
- the protruding amount of each wall 79 from the medium faceable area 75 is greater than or equal to the closest approach distance. Therefore, before the second contactable portion 63 contacts the first contactable portion 93 , the cutting edge 41 enters between the walls 79 by penetrating through the multi-layered sheet 24 that faces the upper end surfaces 79 A of the walls 79 .
- the cutting edge 41 cuts a penetrating slit into a middle portion of the multi-layered sheet 24 in the medium width direction.
- the middle portion of the multi-layered sheet 24 faces the upper end surfaces 79 A of the walls 79 .
- the cutting edge 41 and the medium faceable area 75 sandwich the other portions of the multi-layered sheet 24 therebetween.
- the other portions of the multi-layered sheet 24 do not face the protrusion 78 and are located to the right and left, respectively, of the protrusion 78 .
- the blade 46 reaches the cutting position and the motor 51 (refer to FIG. 4 ) stops driving for pivoting the first holder 71 .
- the cutting edge 41 extends linearly in the right-left direction.
- the closest approach distance is less than a thickness of the multi-layered sheet 24 . Therefore, when the blade 46 reaches the cutting position, the cutting edge 41 cuts non-penetrating slits into the multi-layered sheet 24 at respective locations to the right and left of the protrusion 78 .
- the slit-cutting device 200 may cut, into the multi-layered sheet 24 , a slit line including a non-penetrating slit 29 , a penetrating slit 28 , and another non-penetrating slit 29 successively, along the entire width of the multi-layered sheet 24 (refer to FIG. 14 ).
- the range in which the second holder 49 supported by the support shaft 47 moves relative to the first holder 70 corresponds to the range in which the cutting edge 41 moves closer to or away from the multi-layered sheet 24 .
- the cutting edge 41 cuts a penetrating slit into the multi-layered sheet 24 at the location where the cutting edge 41 faces the protrusion 78 , and also cuts non-penetrating slits into the multi-layered sheet 24 at the other locations where the cutting edge 41 does not face the protrusion 78 .
- the slit-cutting device 200 may cut a predetermined slit line including both the non-penetrating slits and the penetrating slit, into the multi-layered sheet 24 , along the cutting edge 41 of the blade 46 located at the cutting position, in a single slit-cutting operation.
- the second illustrative embodiment may implement the slit-cutting device 200 that may cut, into the multi-layered sheet 24 , a predetermined slit line including both a non-penetrating slit and a penetrating slit, across the multi-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation.
- the protrusion 78 is disposed at the medium faceable area 75 of the first holder 70 such that the protrusion 78 may face a substantially middle portion of the multi-layered sheet 24 facing the medium faceable area 75 in the medium width direction.
- This configuration may therefore enable the slit-cutting device 200 to cut a penetrating slit into a substantially middle portion of the multi-layered sheet 24 in the medium width direction.
- the user may put a fingertip at the penetrating slit formed in the substantially middle portion of the multi-layered sheet 24 in the medium width direction to remove the outer layer sheet 8 and the base layer 13 A from the release material layer 13 C.
- Such a multi-layered sheet 24 may therefore enable the user to easily remove the outer layer sheet 8 and the base layer 13 A from the release material layer 13 C.
- the slit-cutting device 300 includes a slide rail 48 , a second holder 69 , a support table 90 , a first holder 72 , elastic members 88 , a first contactable portion 94 , and protrusions 87 .
- the slide rail 48 includes a fixed rail (not illustrated) and a movable rail (not illustrated).
- the fixed rail is fixed to the inside of the case 5 (refer to FIG. 2 ) and extends in the top-bottom direction.
- the movable rail extends in the top-bottom direction.
- the movable rail is connected to the fixed rail so as to be movable relative to the fixed rail in the top-bottom direction.
- the second holder 69 is fixed to the movable rail of the slide rail 48 . Therefore, the second holder 69 is supported by the slide rail 48 so as to be movable up and down and is movable relative to the first holder 72 .
- the second holder 69 supports a blade 46 .
- the blade 46 has a cutting edge 41 at its lower edge.
- the cutting edge 41 extends linearly in the right-left direction.
- the second holder 69 is connected to the lever disposed at the case 5 . In response to a user's operation of the lever, the second holder 69 moves up and down via the slide rail 48 to move the blade 46 between a non-cutting position (refer to FIG. 15 ) and a cutting position (refer to FIG. 16 ).
- the support table 90 is disposed below the second holder 69 and is fixed facing the second holder 69 .
- the support table 90 has a recessed portion 99 that is recessed downward.
- the first holder 72 is disposed in the recessed portion 99 so as to be movable up and down.
- the first holder 72 has a dimension in the top-bottom direction (e.g., a height) shorter than a dimension in the top-bottom direction (e.g., a depth) of the recessed portion 99 .
- the first holder 72 has a medium faceable area 75 at its upper end surface.
- the medium faceable area 75 may face the multi-layered sheet 24 .
- the medium faceable area 75 may face the cutting edge 41 in the top-bottom direction.
- the medium faceable area 75 may face the release material layer 13 C (refer to FIG. 3 ) of the multi-layered sheet 24 .
- the elastic members 88 are disposed in the recessed portion 99 .
- the elastic members 88 urge the first holder 72 upward.
- Each of the elastic members 88 may be, for example, a compression spring.
- Each of the elastic members 88 has a lower end that is fixed to the recessed portion 99 , and an upper end that is fixed to a lower end of the first holder 72 .
- the first holder 72 and the elastic members 88 each has a dimension in the top-bottom direction such that a sum of the dimension of the first holder 72 in the top-bottom direction and a length of an elastic member 88 in a most contracted state is less than a distance between a bottom end of an open space where the first holder 72 is disposed in the recessed portion 99 and an upper end of the open space of the recessed portion 99 .
- the upper end surface of the first holder 72 i.e., the medium faceable area 75 , is located slightly above the upper end of the open space of the recessed portion 99 (refer to FIG. 15 ).
- a distance between the medium faceable area 75 and the bottom end of the open space of the recessed portion 99 may be greater than the sum of the dimension of the first holder 72 in the top-bottom direction and the length of an elastic member 88 in the most contracted state.
- the medium faceable area 75 might not necessarily be located above the upper end of the recessed portion 99 .
- the first contactable portion 94 is included in the support table 90 .
- the support table 90 includes another recessed portion that includes the first contactable portion 94 at its bottom.
- the first contactable portion 94 constitutes a portion of an upper end surface of the support table 90 .
- the first contactable portion 94 is located below the upper end of the recessed portion 99 .
- Each of the protrusions 87 may be a plate-shaped metallic member and may be made of material harder than the cutting edge 41 .
- the protrusions 87 are disposed with partially overlapping a left end portion and a right end portion, respectively, of the medium faceable area 75 .
- the protrusions 87 are connected to the elastic members 88 indirectly via the first holder 72 . That is, force that the protrusions 87 has received from the cutting edge 41 transfers to the first holder 72 and further transfers to the elastic members 88 .
- the protrusions 87 may face the right and left ends, respectively, of the release material layer 13 C (refer to FIG. 3 ) of the multi-layered sheet 24 .
- the second holder 69 includes a second contactable portion 64 .
- the second holder 69 includes a protruding portion disposed to the left of the cutting edge 41 .
- the protruding portion protrudes relative to the cutting edge 41 .
- the protruding portion includes the second contactable portion 64 at its protruding end.
- the second contactable portion 63 is a flat surface extending in the front-rear direction and in the right-left direction.
- the second contactable portion 63 faces the first contactable portion 94 in the top-bottom direction.
- the second contactable portion 64 needs to be disposed on at least one of the right side and the left side of the cutting edge 41 . Therefore, in other embodiments, for example, the second contactable portion 64 may be disposed to the right of the cutting edge 41 .
- a first distance, a second distance, and a closest approach distance in the slit-cutting device 300 will be defined.
- An absolute value of the first distance may be a shortest distance between an extension of the medium faceable area 75 of the first holder 72 and the first contactable portion 94 of the support table 90 , and correspond to a dimension H 1 .
- An absolute value of the second distance may be a shortest distance between an extension of the cutting edge 41 of the blade 46 of the second holder 69 and the second contactable portion 64 , and correspond to a dimension H 2 .
- the closest approach distance may correspond to a dimension H 3 .
- the first distance is represented by a negative real number
- the second distance is represented by a positive real number.
- the closest approach distance may be a shortest distance between the medium faceable area 75 and the cutting edge 41 when the first contactable portion 94 and the second contactable portion 64 are in contact with each other.
- the closest approach distance is greater than 0 (zero) which is the sum of the first distance and the second distance.
- the closest approach distance is less than the thickness of the multi-layered sheet 24 .
- the closest approach distance is equal to the protruding amount of each protrusion 87 from the medium faceable area 75 (e.g., a dimension L 3 of FIG. 15 ).
- each protrusion 87 from the medium faceable area 75 (e.g., the dimension L 3 of FIG. 15 ) is greater than or equal to the closest approach distance. Therefore, before the second contactable portion 64 contacts the first contactable portion 94 , the cutting edge 41 and the protrusions 87 sandwiches the multi-layered sheet 24 therebetween.
- the blade 46 further moves downward to cause the cutting edge 41 and the medium faceable area 75 to sandwich the multi-layered sheet 24 therebetween.
- the first holder 72 moves downward against elastic force of the elastic members 88 .
- elastic deformation of the elastic members 88 allow the downward movement of the first holder 72 .
- the elastic force that the elastic members 88 apply to the first holder 72 increases correspondingly. This therefore increases the force that the cutting edge 41 and the protrusions 87 sandwich the multi-layered sheet 24 therebetween and the force that the cutting edge 41 and the medium faceable area 75 sandwich the multi-layered sheet 24 therebetween.
- the cutting edge 41 cuts penetrating slits into the multi-layered sheet 24 at respective locations where the cutting edge 41 faces the protrusions 87 , and thus the cutting edge 41 contacts the protrusions 87 . Simultaneously, the cutting edge 41 cuts a non-penetrating slit into the multi-layered sheet 24 at another location where the cutting edge 41 faces the medium faceable area 75 . Therefore, a slit line including a penetrating slit 28 , a non-penetrating slit 29 , and another penetrating slit 28 successively is cut into the multi-layered sheet 24 across the multi-layered sheet 24 with respect to the medium width direction.
- the blade 46 When the second contactable portion 64 contacts the first contactable portion 94 , the blade 46 reaches the cutting position. When the blade 46 is located at the cutting position, the blade 46 presses the first holder 72 via the multi-layered sheet 24 and thus the medium faceable area 75 is flush with the upper end of the recessed portion 99 (refer to FIG. 16 ).
- the range in which the second holder 69 supported by the slide rail 48 moves relative to the first holder 72 corresponds to the range in which the cutting edge 41 moves closer to or away from the multi-layered sheet 24 .
- the cutting edge 41 cuts penetrating slits into the multi-layered sheet 24 at respective locations where the cutting edge 41 faces the protrusions 87 , and also cuts a non-penetrating slit into the multi-layered sheet 24 at another location where the cutting edge 41 face the medium faceable area 75 .
- the slit-cutting device 300 may cut, into the multi-layered sheet 24 , a slit line including both the non-penetrating slit and the penetrating slits, across the multi-layered sheet 24 with respect to the medium width direction, along the cutting edge 41 located at the cutting position, in a single slit-cutting operation.
- the third illustrative embodiment may implement the slit-cutting device 300 that may cut, into the multi-layered sheet 24 , a predetermined slit line including both a non-penetrating slit and a penetrating slit, in a single slit-cutting operation.
- slit-cutting device 300 Various changes or modifications may be applied to the slit-cutting device 300 .
- a slit-cutting device 301 which may be a variation of the slit-cutting device 300 will be described. An explanation will be given mainly for the parts different from the slit-cutting device 300 of the third illustrative embodiment, and an explanation will be omitted for the common components by assigning the same reference numerals thereto.
- the slit-cutting device 301 includes a support table 98 instead of the support table 90 .
- the support table 98 has a recessed portion 99 .
- a first holder 73 which is different from the first holder 72 , is disposed in the recessed portion 99 .
- the first holder 73 is made of an elastically deformable material.
- the first holder 73 has a medium faceable area 75 at its upper end surface. When a blade 460 is located at the non-cutting position, the medium faceable area 75 is located above the upper end of the recessed portion 99 .
- FIGS. 17 and 18 for purposes of clear illustration, the first holder 73 is hatched.
- a plurality of protrusions 87 are disposed at the medium faceable area 75 .
- the protrusions 87 are connected to the first holder 87 directly. That is, force that the protrusions 87 has received from the cutting edge 41 transfers to the first holder 73 from the protrusions 87 .
- the support table 98 includes a first contactable portion 95 .
- the first contactable portion 95 is a flat surface that constitutes a portion of an upper end surface of the support table 98 and that extends in the horizontal direction. The first contactable portion 95 is flush with the upper end of the recessed portion 99 .
- the slit-cutting device 301 further includes a second holder 89 instead of the second holder 69 .
- the second holder 89 is supported by the slide rail 48 so as to be movable up and down.
- the second holder 89 is connected to the lever (not illustrated) disposed at the case 5 .
- the slit-cutting device 301 includes the blade 460 instead of the blade 46 .
- the blade 460 includes a cutting edge 41 and a second contactable portion 65 that is disposed at a different position than the cutting edge 41 .
- the second contactable portion 65 is a flat surface that extends in the horizontal direction.
- the second contactable portion 65 is flush with the cutting edge 41 of the blade 46 .
- a first distance, a second distance, and a closest approach distance in the slit-cutting device 301 will be defined.
- An absolute value of the first distance when the first contactable portion 95 and the second contactable portion 65 are in contact with each other correspond to a dimension J 2 .
- the second distance is 0 (zero).
- the first distance is represented by a positive real number.
- the closest approach distance is equal to the first distance (e.g., the dimension H 2 ) and less than the thickness of the multi-layered sheet 24 .
- the closest approach distance is equal to the protruding amount of each protrusion 87 from the medium faceable area (e.g., a dimension L 4 of FIG. 17 ).
- the user manually operates the lever to move the blade 46 from the non-cutting position to the cutting position.
- the cutting edge 41 penetrates into some layers of the multi-layered sheet 24 at locations where the cutting edge 41 faces the protrusions 87 and sandwiches the multi-layered sheet 24 in cooperation with the medium faceable area 75 at a location where the cutting edge 41 faces the medium faceable area 75 .
- Elastic deformation of the first holder 73 allows the downward movement of the protrusions 87 .
- the blade 460 reaches the cutting position (refer to FIG. 18 ).
- the cutting edge 41 cuts penetrating slits into the multi-layered sheet 24 at respective locations where the cutting edge 41 faces the protrusions 87 , and also cuts a non-penetrating slit into the multi-layered sheet 24 at another location where the cutting edge 41 face the medium faceable area 75 .
- the slit-cutting device 401 includes a first contactable portion 96 and a second contactable portion 66 .
- the first holder 70 includes a protruding portion that protrudes relative to the medium faceable area 75 toward the cutting edge 41 .
- the protruding portion of the first holder 70 includes the first contactable portion 96 at its top end.
- the second holder 49 includes a protruding portion that protrudes relative to the cutting edge 41 toward the medium faceable area 75 .
- the protruding portion of the second holder 49 includes the second contactable portion 66 at its bottom end.
- the first distance when the first contactable portion 96 and the second contactable portion 66 are in contact with each other is represented by a positive real number similar to the slit-cutting device 200 (refer to FIG. 13 ) and corresponds to a dimension K 1 .
- the second distance when the first contactable portion 96 and the second contactable portion 66 are in contact with each other is represented by a positive real number similar to the slit-cutting device 100 (refer to FIG. 6 ) and corresponds to a dimension K 2 .
- the closest approach distance is a value represented by the sum of the first distance and the second distance.
- the cutting edge in a single slit-cutting operation, may cut a penetrating slit into the medium at a location where the cutting edge faces the protrusion, and also cut a non-penetrating slit into the medium at another location where the cutting edge faces the medium faceable area. Therefore, the slit-cutting device may cut both a non-penetrating slit and a penetrating slit in the medium along the cutting edge in a single slit-cutting operation.
- some embodiments of the disclosure may implement the slit-cutting device that may cut a predetermined slit line including both a non-penetrating slit and a penetrating slit, into a medium in a single slit-cutting operation.
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Abstract
Description
- This application claims priority from Japanese Patent Application No. 2017-073167 filed on Mar. 31, 2017, the content of which is incorporated herein by reference in its entirety.
- The disclosure relates to a slit-cutting device.
- Known cutting devices include a plate to which a medium may contact and a blade that may face the plate. The cutting devices cut a medium incompletely or completely using the plate and blade. Cutting includes half cutting and full cutting. In half cutting, the cutting devices cut incompletely a medium located between the blade and plate, in a medium thickness direction, to form a non-penetrating slit in the medium. In full cutting, the cutting devices cut completely the medium located between the blade and plate, in the medium thickness direction, to divide the medium into two portions. Some of the known cutting devices includes a cutting blade for performing half cutting on a tape, which is an example of the medium, and a movable blade for performing full cutting on the tape. The cutting blade and the movable blade are disposed next to each other in a direction in which the tape is conveyed.
- Nevertheless, such a configuration might not enable the printer to cut a predetermined slit line including both a non-penetrating slit and a penetrating slit, into the tape, along a plane extending orthogonal to a surface of the tape, in a single cutting operation.
- Accordingly, some embodiments of the disclosure provide for a slit-cutting device that may cut a slit line including both a non-penetrating slit and a penetrating slit, into a medium in a single slit-cutting operation.
- A slit-cutting device includes a first holder, a second holder, a first contactable member, a second contactable member, and a protrusion member. The first holder includes a medium faceable area. The second holder holds a blade. A cutting edge of the blade may cut a medium between the first holder and the blade. The first holder includes a first contactable member. The second holder includes a second contactable member. The first contactable member and the second contactable member contact each other and defined a closest approach distance between the cutting edge and the first holder. The closest approach distance is greater than 0 and below a thickness of the medium. The protrusion member protrudes more than the closest approach distance from a part of the medium faceable area. The cutting edge may make a cut line includes at least a part of a slit-cut and a full-cut in a cutting edge direction in the medium.
- Aspects of the disclosure are illustrated by way of example and not by limitation in the accompanying figures in which like reference characters indicate similar elements.
-
FIG. 1 is a perspective view of a printer and a data generating device in a first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 2 is a left side view of an internal configuration of the printer in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 3 is a sectional view of a multi-layered sheet in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 4 is a front view of a slit-cutting device when a blade is located at a non-cutting position in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 5 is a perspective view of protrusions in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 6 is a front view of the slit-cutting device when the blade is located at a cutting position in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 7 is a top view of the multi-layered sheet having a slit line formed in a slit-cutting operation performed by the slit-cutting device in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 8 is a sectional view taken along line I-I of the multi-layered sheet when viewed in an arrow direction in the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 9 is a front view of a slit-cutting device in a variation of the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 10 is a front view of the slit-cutting device in another state in the variation of the first illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 11 is a front view of a slit-cutting device when a blade is located at a non-cutting position in a second illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 12 is a perspective view of a protrusion in the second illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 13 is a front view of the slit-cutting device when the blade is located at a cutting position in the second illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 14 is a top view of a multi-layered sheet having a slit line formed in a slit-cutting operation performed by the slit-cutting device in the second illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 15 is a front view of a slit-cutting device when a blade is located at a non-cutting position in a third illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 16 is a front view of the slit-cutting device when the blade is located at a cutting position in the third illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 17 is a front view of a slit-cutting device when a blade is located at a non-cutting position in a variation of the third illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 18 is a front view of the slit-cutting device when the blade is located at a cutting position in the variation of the third illustrative embodiment according to one or more aspects of the disclosure. -
FIG. 19 is a front view of a slit-cutting device in another variation of the first illustrative embodiment according to one or more aspects of the disclosure. - Hereinafter, a slit-
cutting device 100 according to a first illustrative embodiment will be described with reference to the accompanying drawings. The slit-cutting device 100 is included in aprinter 1. Hereinafter, directions, e.g., top, bottom, right, left, front and rear, indicated by arrows in each drawing may be defined as orientation of theprinter 1 that may be disposed in which it may be intended to be used as depicted inFIG. 1 . - The
printer 1 ofFIG. 1 is configured to print an image, e.g., characters, letters, figures, and/or symbols, on a medium. Theprinter 1 may be electrically connected to adata generating device 2 via aconnector 4. Thedata generating device 2 is configured to operate in response to a user's operation. Thedata generating device 2 generates image data representing an image to be printed, and transmits the generated image data to theprinter 1. Thedata generating device 2 transmits also a print instruction and a slit-cutting operation start instruction to theprinter 1 via theconnector 4. The print instruction may be an instruction for printing an image onto a medium. The slit-cutting operation start instruction may be an instruction for moving a blade toward the printed medium. In the first illustrative embodiment, in theprinter 1, moving the blade toward a medium may enable to both half cutting for cutting one or more non-penetrating slits in the medium and full cutting for cutting one or more penetrating slits in the medium in a single slit-cutting operation. In half cutting, the blade cuts a medium incompletely in a medium thickness direction. In other words, the blade cuts one or more non-penetrating slits in the medium. Non-penetrating slits penetrate partway in the medium but do not penetrate through the medium in the medium thickness direction. In full cutting, the blade cuts a medium completely in the medium thickness direction. In other words, the blade cuts one or more penetrating slits in the medium. Penetrating slits penetrate through the medium in the medium thickness direction. In the first illustrative embodiment, a medium may be amulti-layered sheet 24 including anouter layer sheet 8 and a double-sided adhesive sheet 13 (refer toFIG. 3 ). For example, themulti-layered sheet 24 may have a width of 5 cm or less in the right-left direction. Nevertheless, in other embodiments, for example, a medium to be used in theprinter 1 may be a sheet consisting of a single layer or a sheet having a width of greater than 5 cm. - Referring to
FIGS. 2 and 3 , an internal configuration of theprinter 1 will be described. Theprinter 1 includes ahollow case 5. Thecase 5 includes anaccommodating portion 17 to or from which atape cassette 7 is attachable or detachable in the right-left direction. Thetape cassette 7 includes therein a tape spool, aribbon supply spool 11, a ribbon take-upspool 12, abase supply spool 15, and asheet bonding roller 16. The tape spool has the transparentouter layer sheet 8, e.g., polyethylene terephthalate (“PET”) film, wound therearound. Theribbon supply spool 11 has anink ribbon 10 wound therearound. The ribbon take-upspool 12 is configured to wind theink ribbon 10 therearound. Thebase supply spool 15 has a double-sided adhesive sheet 13 wound therearound. Thesheet bonding roller 16 is rotatably disposed. The double-sided adhesive sheet 13 has multiple layers, for example, at least two layers (refer toFIG. 3 ). In the first illustrative embodiment, the double-sided adhesive sheet 13 includes abase layer 13A,adhesive layers 13B, and arelease material layer 13C. The adhesive layers 13B are positioned on respective surfaces of thebase layer 13A. Therelease material layer 13C is adhered to theadhesive layer 13B positioned on one of the surfaces of thebase layer 13A. In a roll of the double-sided adhesive sheet 13 wound around thebase supply spool 15, therelease material layer 13C is outside and thebase layer 13A is inside. The double-sided adhesive sheet 13 may be adhered to theouter layer sheet 8 via the exposedadhesive layer 13B after drawn from thebase supply spool 15. - Referring to
FIG. 2 , a printing operation performed by theprinter 1 will be described. Theprinter 1 further includes athermal head 18 and aroller holder 20 in theaccommodating portion 17. Theprinter 1 further includes adrive motor 25 in the vicinity of theaccommodating portion 17. Thethermal head 18 may be a plate-like member having a plurality of heating elements. Theroller holder 20 holds aplaten roller 21 and aconveyance roller 22 rotatably. The ribbon take-upspool 12, theconveyance roller 22, and thesheet bonding roller 16 rotate in synchronization with each other by driving of thedrive motor 25. Simultaneously with this, the heating elements of thethermal head 18 generate heat. Theplaten roller 21 and thethermal head 18 sandwich theink ribbon 10 and theouter layer sheet 8 therebetween.Ink 23 included in theink ribbon 10 is transferred to a lower surface of theouter layer sheet 8 by heating of the heating elements of thethermal head 18. Thus, an image is printed on theouter layer sheet 8. Theouter layer sheet 8 having the printed image is conveyed by rotation of theconveyance roller 22 and thesheet bonding roller 16 and rotation of theplaten roller 21 that rotates following the rotation of theconveyance roller 22 and thesheet bonding roller 16. Theconveyance roller 22 and thesheet bonding roller 16 sandwich theouter layer sheet 8 and the double-sided adhesive sheet 13 therebetween. Therefore, theouter layer sheet 8 having the printed image is adhered to the double-sided adhesive sheet 13 while its lower surface having the printed image faces the exposedadhesive layer 13B of the double-sided adhesive sheet 13. Thus, theprinter 1 forms amulti-layered sheet 24 having the printed image. Subsequent to this, themulti-layered sheet 24 is conveyed to the slit-cuttingdevice 100. Themulti-layered sheet 24 has the printed image, for example, “ABC”, as letters (refer toFIG. 7 ). - The
multi-layered sheet 24 may pass through adischarge port 27 of thecase 5. The ribbon take-upspool 12, thesheet bonding roller 16, and theconveyance roller 22 are connected to thedrive motor 25 disposed in thecase 5. Therefore, theconveyance roller 22 may convey themulti-layered sheet 24 in cooperation with thesheet bonding roller 16. A direction in which themulti-layered sheet 24 is conveyed between theconveyance roller 22 and thedischarge port 27 corresponds to the front-rear direction. When themulti-layered sheet 24 is being conveyed between theconveyance roller 22 and thedischarge port 27, a thickness direction of the multi-layered sheet 24 (also simply referred to as a medium thickness direction) corresponds to the top-bottom direction and a width direction of the multi-layered sheet 24 (also simply referred to as a medium width direction) corresponds to the right-left direction. When themulti-layered sheet 24 is located between theconveyance roller 22 and thedischarge port 27, therelease material layer 13C is positioned below thebase layer 13A and theouter layer sheet 8 is positioned above thebase layer 13A (refer toFIG. 3 ). - The
printer 1 further includes a full-cuttingdevice 85 between theconveyance roller 22 and thedischarge port 27. The full-cuttingdevice 85 is configured to cut themulti-layered sheet 24 completely in the medium thickness direction across themulti-layered sheet 24 with respect to the medium width direction to divide themulti-layered sheet 24 into two portions, i.e., to separate a portion of themulti-layered sheet 24 from the remainder of themulti-layered sheet 24. The full-cuttingdevice 85 includes a fixedblade 81 and amovable blade 82. The fixedblade 81 is disposed below a path in which themulti-layered sheet 24 moves. The fixedblade 81 is fixed to the inside of thecase 5 with its upper edge being sharpened for cutting. Themovable blade 82 is disposed above the fixedblade 81 and the path in which where themulti-layered sheet 24 moves. Themovable blade 82 is configured to move up and down relative to the fixedblade 81. Themovable blade 82 is connected to a lever disposed at thecase 5 with its lower edge being sharpened for cutting. The cutting edges of the fixedblade 81 and themovable blade 82 each extend in the right-left direction and have a length greater than the width of themulti-layered sheet 24. Themovable blade 82 is configured to move downward toward the fixedblade 81 in response to a user's operation for moving the lever. The full-cuttingdevice 85 cuts themulti-layered sheet 24 completely in the medium thickness direction along the entire width of themulti-layered sheet 24 by pinching themulti-layered sheet 24 between the lower cutting edge of themovable blade 82 and the upper cutting edge of the fixedblade 81. - Referring to
FIGS. 4 and 5 , the slit-cuttingdevice 100 will be described. The slit-cuttingdevice 100 is configured to cut a slit line into themulti-layered sheet 24. Cutting a slit line into themulti-layered sheet 24 may include cutting a slit line that extends between ends of themulti-layered sheet 24 with respect to the medium width direction and includes both of one or more non-penetrating slits and one or more penetrating slits, into themulti-layered sheet 24 in a single slit-cutting operation The slit-cuttingdevice 100 is disposed between the full-cuttingdevice 85 and thedischarge port 27. The slit-cuttingdevice 100 includes afirst holder 70, a first contactable portion 91 (e.g., an area offirst holder 70 is an example of a “contactable member”), and acutting unit 80. - The
first holder 70 is fixed to the inside of the case 5 (refer toFIG. 2 ). Thefirst holder 70 may be made of metallic material. Thefirst holder 70 has a medium faceablearea 75. The medium faceablearea 75 may be a flat surface that defines a portion of an upper end surface of thefirst holder 70 and extend both in the right-left direction and in the front-rear direction. Thefirst holder 70 preferably has a flat surface that is longer than asecond holder 49 in the front-rear direction so as to enable acutting edge 41 to stably contact themulti-layered sheet 24 facing the medium faceablearea 75. The medium faceablearea 75 may face a portion of themulti-layered sheet 24 between the full-cuttingdevice 85 and thedischarge port 27 when themulti-layered sheet 24 is located above the medium faceablearea 75. More specifically, the medium faceablearea 75 may face therelease material layer 13C (refer toFIG. 3 ) of themulti-layered sheet 24. When themulti-layered sheet 24 is located above the medium faceablearea 75 with therelease material layer 13C facing the medium faceablearea 75, the thickness direction of themulti-layered sheet 24 corresponds to the top-bottom direction and the width direction of themulti-layered sheet 24 corresponds to the right-left direction. The medium faceablearea 75 has substantially the same width in the right-left direction as the width of themulti-layered sheet 24. In the first illustrative embodiment, for example, the firstcontactable portion 91 is included in thefirst holder 70. The firstcontactable portion 91 defines another portion of the upper end surface of thefirst holder 70. More specifically, the firstcontactable portion 91 defines the portion that is positioned to the left of the medium faceablearea 75 in the upper end surface of thefirst holder 70. The firstcontactable portion 91 is flush with the medium faceablearea 75 in the top-bottom direction. A plurality ofprotrusions 77 are disposed at the medium faceablearea 75. For example, each of theprotrusions 77 may be a plate-shaped member extending both in the right-left direction and in the front-rear direction. Theprotrusions 77 may be made of material that may deform when ablade 46 contacts thereto. Each of theprotrusions 77 may be, for example, a laminated tape. Each of theprotrusions 77 is adhered to a respective portion of the medium faceablearea 75. In other embodiments, theprotrusions 77 may be made of other material if theprotrusions 77 are deformable when theblade 46 contacts thereto. For example, theprotrusions 77 may be made of resin material, e.g., sponge or rubber. - In the first illustrative embodiment, for example, three
protrusions 77 are spaced from each other at regular intervals in the right-left direction. The intervals betweenprotrusions 77 may be, for example, 24 mm or shorter. The intervals betweenprotrusions 77 may be a maximum distance that a particular area of themulti-layered sheet 24 betweenadjacent protrusions 77 can be applied with an appropriate degree of force from thecutting edge 41. A protruding amount of eachprotrusion 77 that protrudes upward from the medium faceablearea 75 corresponds to a dimension L1 ofFIG. 5 . Thecentral protrusion 77 may face a middle portion of a bottom surface of themulti-layered sheet 24 in the medium width direction. The right and leftprotrusions 77 each have afirst end 77A outside the medium faceablearea 75 and asecond end 77B inside the medium faceablearea 75. Theright protrusion 77 is disposed such that one end (e.g., a right end) of themulti-layered sheet 24 may face theright protrusion 77. In theright protrusion 77, when themulti-layered sheet 24 faces the medium faceablearea 75, thefirst end 77A (e.g., the right end) is positioned further to the right than the right end of themulti-layered sheet 24 and outside the width range of themulti-layered sheet 24, and thesecond end 77B (e.g., the left end) is positioned further to the left than the right end of themulti-layered sheet 24 and inside the width range of themulti-layered sheet 24. Theleft protrusion 77 is disposed such that the other end (e.g., a left end) of themulti-layered sheet 24 may face theleft protrusion 77. In theleft protrusion 77, when themulti-layered sheet 24 faces the medium faceablearea 75, thefirst end 77A (e.g., the left end) is positioned further to the left than the left end of themulti-layered sheet 24 and outside the width range of themulti-layered sheet 24, and thesecond end 77B (e.g., the right end) is positioned further to the right than the left end of themulti-layered sheet 24 and inside the width range of themulti-layered sheet 24. - As illustrated in
FIG. 4 , the cuttingunit 80 includes asupport shaft 47, asecond holder 49, theblade 46, a second contactable portion 61 (e.g., an area ofsecond holder 49 is an example of a “contactable member”), and apower transmission unit 52. Thesupport shaft 47 is disposed such that its axis extends along the front-rear direction. Thesupport shaft 47 has one end portion that is connected to thesecond holder 49, and the other end portion that is positioned in the inside of the case 5 (refer toFIG. 2 ). The other end portion of thesupport shaft 47 positioned at thecase 5 is slidably engaged with a hole provided in the inside of thecase 5. Thesupport shaft 47 supports thesecond holder 49 so as to be pivotable. That is, thesupport shaft 47 supports thesecond holder 49 such that thesecond holder 49 is movable relative to thefirst holder 70. More specifically, the one end portion of thesupport shaft 47 is fixed to thesecond holder 49. Nevertheless, in other embodiments, for example, the other end portion of thesupport shaft 47 may be fixed to the inside of thecase 5 and the one end portion of thesupport shaft 47 may be engaged with a hole of thesecond holder 49 so as to be slidable. Hereinafter, a direction in which thesecond holder 49 pivots on thesupport shaft 47 may simply refer to a circumferential direction of thesupport shaft 47. Thesecond holder 49 has an elongatedhole 45. Theelongated hole 45 is elongated in a direction orthogonal to the front-rear direction. Theelongated hole 45 is engaged with apin 44. - The
blade 46 is supported by thesecond holder 49. Theblade 46 has a hole at a substantially central portion thereof. Thesecond holder 49 includes a projection that protrudes in the front-rear direction. The projection of thesecond holder 49 is engaged with the hole of theblade 46 to retain theblade 46 relative to thesecond holder 49. Theblade 46 is made of material that is harder than theprotrusions 77. In the first illustrative embodiment, for example, theblade 46 may be a plate-shaped member made of metallic material. Theblade 46 has acutting edge 41 sharpened in a V-shape for cutting. Thecutting edge 41 extends linearly in the right-left direction and has a length no shorter than the width of the multi-layered sheet 24 (e.g., the dimension of themulti-layered sheet 24 in the right-left direction). Thesupport shaft 47 is positioned on an extension of thecutting edge 41. In other words, thesupport shaft 47 is disposed to one side of thecutting edge 41 with respect to a direction in which thecutting edge 41 extends. Portions of thecutting edge 41 may face therespective protrusions 77 in the circumferential direction of thesupport shaft 47 and other portions of thecutting edge 41 may face the medium faceablearea 75 in the circumferential direction of thesupport shaft 47. That is, thecutting edge 41 may face at least both the medium faceablearea 75 and theprotrusions 77 in the circumferential direction of thesupport shaft 47. - In the first illustrative embodiment, for example, the second
contactable portion 61 is included in thesecond holder 49. Thesecond holder 49 includes a protruding portion that protrudes relative to thecutting edge 41. The protruding portion is disposed opposite to thesupport shaft 47 relative to theblade 46. The protruding portion includes the secondcontactable portion 61 at its protruding end. The secondcontactable portion 61 is a flat surface extending in the front-rear direction and in the right-left direction. The secondcontactable portion 61 may contact the firstcontactable portion 91 in the circumferential direction of thesupport shaft 47. In other embodiments, for example, the secondcontactable portion 61 may be disposed at any location that is outside, in the right-left direction, at least a range in which thecutting edge 41 may face themulti-layered sheet 24 in the circumferential direction of thesupport shaft 47. - The
power transmission unit 52 includes agear 53 and amotor 51. Thegear 53 is configured to rotate on a shaft extending along the front-rear direction. Thegear 53 includes thepin 44 extending in the front-rear direction. Thepin 44 is engaged with theelongated hole 45 of thesecond holder 49 slidably relative to theelongated hole 45. Themotor 51 is connected to thegear 53 via agear train 56. With this configuration, in response to rotation of thegear 53 by driving of themotor 51, thepin 44 causes thesecond holder 49 to pivot on thesupport shaft 47. In response to pivoting of thesecond holder 49, theblade 46 moves pivotably. Theblade 46 is configured to move pivotably between a non-cutting position (refer toFIG. 4 ) and a cutting position (refer toFIG. 6 ). When theblade 46 is located at the non-cutting position, thecutting edge 41 is located above and spaced from thefirst holder 70. In this state, the firstcontactable portion 91 of thefirst holder 70 does not contact the secondcontactable portion 61 of thesecond holder 49. When theblade 46 is located at the cutting position, thecutting edge 41 contacts theprotrusions 77 and faces the medium faceablearea 75 with a slight clearance left between the cuttingedge 41 and the medium faceablearea 75. In this state, the firstcontactable portion 91 of thefirst holder 70 is in contact with the secondcontactable portion 61 of thesecond holder 49. The distance to theblade 46 from thefirst holder 70 is determined at the cutting position when the secondcontactable portion 61 and the firstcontactable portion 91 are in contact with each other. - Referring to
FIG. 6 , a first distance, a second distance, and a closest approach distance in the slit-cuttingdevice 100 will be defined. The first distance may be a distance to the firstcontactable portion 91 from the medium faceablearea 75 in a direction in which thecutting edge 41 and the medium faceablearea 75 face each other when the firstcontactable portion 91 and the secondcontactable portion 61 are in contact with each other. The first distance may be represented by a positive or negative real number. Positive represents a direction from the medium faceablearea 75 toward thecutting edge 41, and negative represents its opposite direction. In the first illustrative embodiment, the first distance is 0 (zero). - The second distance may be a distance to the second
contactable portion 91 from thecutting edge 41 in the direction in which thecutting edge 41 and the medium faceablearea 75 face each other when the firstcontactable portion 91 and the secondcontactable portion 61 are in contact with each other. The second distance may be represented by a positive or negative real number. Positive represents a direction from thecutting edge 41 toward the medium faceablearea 75, and negative represents its opposite direction. In the first illustrative embodiment, the second distance is represented by a positive real number and corresponds to a dimension E2 ofFIG. 6 . - The closest approach distance may be a shortest distance between the cutting
edge 41 and the medium faceablearea 75 when the firstcontactable portion 91 and the secondcontactable portion 61 are in contact with each other. The closest approach distance may be a value represented by a sum of the first distance and the second distance. The sum of the first distance and the second distance is greater than 0 (zero). Therefore, in the first illustrative embodiment, the closest approach distance corresponds to the distance E2 ofFIG. 6 . The closest approach distance may be less than a thickness of the multi-layered sheet 24 (e.g., a dimension T1 ofFIG. 3 ). In the first illustrative embodiment, for example, the closest approach distance is equal to or less than a thickness (e.g., a dimension T2 ofFIG. 3 ) of therelease material layer 13C (refer toFIG. 3 ). The closest approach distance is equal to or less than the protruding amount of eachprotrusion 77. - Referring to
FIGS. 4, 6, 7 and 8 , a slit-cutting operation performed by the slit-cuttingdevice 100 will be described. The slit-cuttingdevice 100 performs a slit-cutting operation subsequent to completion of a printing operation performed by theprinter 1. In the slit-cutting operation, theblade 46 is located at the non-cutting position (refer toFIG. 4 ) initially. InFIGS. 4 and 6 , for purposes of clear illustration, themulti-layered sheet 24 is hatched. InFIGS. 9, 10, 11, 13, 15 to 19 , themulti-layered sheet 24 is also hatched. InFIG. 4 , theprotrusions 77 are filled with solid black.FIGS. 7 and 8 illustrate themulti-layered sheet 24 having a slit line formed in a slit-cutting operation. The cutting pattern or the types of cut slits to be formed in themulti-layered sheet 24 in a slit-cutting operation is not limited to those illustrated inFIGS. 7 and 8 . - As illustrated in
FIGS. 4 and 6 , theblade 46 pivotally moves toward thefirst holder 70 from the non-cutting position (refer to an arrow H inFIG. 4 ) in accordance with pivoting of thesecond holder 49 by driving of themotor 51. In response to this, a portion, which is close to the support shaft 47 (e.g., a right end portion in the right-left direction), of thecutting edge 41 sandwiches a portion of themulti-layered sheet 24 in cooperation with theright protrusion 77. Then, a middle portion of thecutting edge 41 in the right-left direction sandwiches another portion of themulti-layered sheet 24 in cooperation with thecentral protrusion 77. Before the middle portion of thecutting edge 41 and thecentral protrusion 77 completely sandwich the corresponding portion of themulti-layered sheet 24 therebetween, the right end portion of thecutting edge 41 penetrates through themulti-layered sheet 24 at a location where the right end portion of thecutting edge 41 and theright protrusion 77 face each other. Then, a portion, which is distant from the support shaft 47 (e.g., a left end portion in the right-left direction), of thecutting edge 41 sandwiches the other portion of themulti-layered sheet 24 in cooperation with theleft protrusion 77. Before the left end portion of thecutting edge 41 and theleft protrusion 77 completely sandwich the other portion of themulti-layered sheet 24, thecutting edge 41 penetrates into themulti-layered sheet 24 toward the medium faceablearea 75 at a location between theright protrusion 77 and thecentral protrusion 77 in the right-left direction. Similar to this, thecutting edge 41 penetrates into themulti-layered sheet 24 toward the medium faceablearea 75 at another location between thecentral protrusion 77 and theleft protrusion 77 in the right-left direction. Then, the left end portion of thecutting edge 41 penetrates through themulti-layered sheet 24 at another location where the left end portion of thecutting edge 41 and theleft protrusion 77 face each other. Thus, a slit line including both non-penetrating slits and penetrating slits is cut into themulti-layered sheet 24 across themulti-layered sheet 24 with respect to the medium width direction. - The
blade 46 further pivotally moves to the cutting position. Theblade 46 is positioned at the cutting position through contacting of the secondcontactable portion 61 and the firstcontactable portion 91 each other. In response to positioning of theblade 46 at the cutting position, themotor 51 stops driving for moving thesecond holder 49. In a state where theblade 46 is positioned at the cutting position, thecutting edge 41 extends in the right-left direction at substantially the same level in the top-bottom direction as the axis of thesupport shaft 47 while being located above the medium faceablearea 75. - Referring to
FIGS. 6, 7, and 8 , a state of each of theblade 46, theprotrusions 77, and themulti-layered sheet 24 when theblade 46 has reached the cutting position will be described. The protruding amount (e.g., the dimension L1 ofFIG. 5 ) of eachprotrusion 77 is greater than or equal to the closest approach distance. When theblade 46 is located at the cutting position, thecutting edge 41 penetrates through themulti-layered sheet 24 at particular locations where thecutting edge 41 faces theprotrusions 77 disposed at thefirst holder 70, and contacts theprotrusions 77. Therefore, thecutting edge 41 has cut the entire thickness of themulti-layered sheet 24 at three locations where thecutting edge 41 faces theprotrusions 77, and penetrates in theprotrusions 77. That is, thecutting edge 41 has cut the entire thickness of theouter layer sheet 8, thebase layer 13A, theadhesive layers 13B, and therelease material layer 13C of themulti-layered sheet 24 at the particular locations where thecutting edge 41 faces theprotrusions 77. In this state, an upper surface of each of theprotrusions 77 has been deformed in response to penetration of theblade 46 such that its portion to which thecutting edge 41 contacts is depressed or cut. The upper surface of each of theprotrusions 77 may be elastically or plastically deformable. - The closest approach distance is equal to or less than the thickness of the
release material layer 13C and is greater than 0 (zero). When theblade 46 is located at the cutting position, thecutting edge 41 penetrates in themulti-layered sheet 24 at locations where noprotrusion 77 is provided at thefirst holder 70 and thecutting edge 41 does not face theprotrusions 77, and more specifically, at a location between theright protrusion 77 and thecentral protrusion 77 and a location between thecentral protrusion 77 and theleft protrusion 77 in the right-left direction. In other words, thecutting edge 41 penetrates only partial thickness of therelease material layer 13C of themulti-layered sheet 24 at those locations. Thus, thecutting edge 41 pinches themulti-layered sheet 24 in cooperation with the medium faceablearea 75 and has cut themulti-layered sheet 24 incompletely in the medium thickness direction at two locations where thecutting edge 41 and the medium faceablearea 75 face each other. More specifically, for example, thecutting edge 41 has cut the entire thickness of theouter layer sheet 8, thebase layer 13A, and theadhesive layers 13B, but has cut the partial thickness of therelease material layer 13C, e.g., only an upper portion of therelease material layer 13C in the medium thickness direction. - After the
blade 46 reached the cutting position, themotor 51 rotates in an opposite direction to move theblade 46 in an opposite direction. In response to this, theblade 46 pivotally moves to the non-cutting position (refer toFIG. 4 ). Through such a slit-cutting operation, as illustrated inFIG. 7 , a slit line including both penetratingslits 28 andnon-penetrating slits 29 has cut alternately in themulti-layered sheet 24 across themulti-layered sheet 24 with respect to the medium width direction.Penetrating slits 28 are cut slits that completely penetrate or penetrate through themulti-layered sheet 24 in the medium thickness direction.Non-penetrating slits 29 are cut slits that incompletely penetrate or penetrate partway in themulti-layered sheet 24 in the medium thickness direction. In the first illustrative embodiment, for example, three penetratingslits 28 are cut in themulti-layered sheet 24. One of the penetratingslits 28 is formed in a middle portion of themulti-layered sheet 24 in the medium width direction and the others of the penetratingslits 28 are formed in respective end portions of themulti-layered sheet 24 in the medium width direction. Further, twonon-penetrating slits 28 are cut in themulti-layered sheet 24. Each of thenon-penetrating slits 28 is formed between adjacent two of the penetratingslits 28 in the medium width direction. - Referring to
FIG. 2 , a full-cutting operation performed by the full-cuttingdevice 85 will be described. Subsequent to completion of the slit-cutting operation performed by the slit-cuttingdevice 100, the user operates the lever (not illustrated) to manually move themovable blade 82 toward the fixedblade 81. In response to this, the full-cuttingdevice 85 cuts themulti-layered sheet 24 completely in the medium thickness direction along the entire width of themulti-layered sheet 24 by pinching themulti-layered sheet 24 between the lower cutting edge of themovable blade 82 and the upper cutting edge of the fixedblade 81. Therefore, a portion of themulti-layered sheet 24 is separated from the remainder of themulti-layered sheet 24 at its boundary to which the lower cutting edge of themovable blade 82 contacts. Thus, the user may take out, from theprinter 1, the separated portion of themulti-layered sheet 24 on which the printing operation and the slit-cutting operation have been performed. Nevertheless, the full-cuttingdevice 85 might not necessarily be operated manually by the user. In other embodiments, for example, the full-cuttingdevice 85 may be configured to move themovable blade 82 automatically to separate a portion of themulti-layered sheet 24 from the remainder by driving of themotor 51 subsequent to completion of the slit-cutting operation performed by the slit-cuttingdevice 100. - As described above, the range in which the
second holder 49 supported by thesupport shaft 47 moves relative to thefirst holder 70 corresponds to the range in which thecutting edge 41 moves closer to or away from themulti-layered sheet 24. The closest approach distance (e.g., the dimension E2 ofFIG. 6 ) is greater than 0 (zero) and less than the thickness of the multi-layered sheet 24 (e.g., the dimension T1 ofFIG. 3 ). In other words, the thickness of themulti-layered sheet 24 is a length of themulti-layered sheet 24 in a direction defined the closest approach distance when t themulti-layered sheet 24 is between thefirst holder 70 and thesecond holder 49. The protruding amount (e.g., the dimension L1 ofFIG. 5 ) of eachprotrusion 77 is greater than or equal to the closest approach distance. Therefore, when theblade 46 reaches the cutting position, penetrating slits are cut into themulti-layered sheet 24 at respective locations where thecutting edge 41 faces theprotrusions 77 and non-penetrating slits are cut into themulti-layered sheet 24 at the other locations where thecutting edge 41 faces the medium faceablearea 75. Thus, in a single slit-cutting operation, one or more non-penetrating slits and one or more penetrating slits are both formed in themulti-layered sheet 24 along thecutting edge 41 of theblade 46 located at the cutting position. Accordingly, the first illustrative embodiment may implement the slit-cuttingdevice 100 that may cut, into themulti-layered sheet 24, a predetermined slit line including both a non-penetrating slit and a penetrating slit, across themulti-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation. - The
right protrusion 77 is disposed at a position where the right end themulti-layered sheet 24 may face. Theleft protrusion 77 is disposed at a position where the left end themulti-layered sheet 24 may face. This configuration may therefore enable the slit-cuttingdevice 100 to cut a penetrating slit into each end portion of themulti-layered sheet 24 in the right-left direction (e.g., in the medium width direction). Thus, the user may put a fingertip at one of the penetrating slits formed in the respective end portions of themulti-layered sheet 24 in the right-left direction to remove theouter layer sheet 8 and thebase layer 13A from therelease material layer 13C. Such amulti-layered sheet 24 may therefore enable the user to easily remove theouter layer sheet 8 and thebase layer 13A from therelease material layer 13C. - When the
multi-layered sheet 24 is located above the medium faceablearea 75, the right end of themulti-layered sheet 24 is positioned between thefirst end 77A and thesecond end 77B of theright protrusion 77 in the right-left direction. That is, theright protrusion 77 has a surface that continuously extends between a particular position, which is to the left of the right end of themulti-layered sheet 24 within the medium faceablearea 75, and another particular position, which is to the right of the right end of themulti-layered sheet 24 out of the medium faceablearea 75. When themulti-layered sheet 24 is located above the medium faceablearea 75, the left end of themulti-layered sheet 24 is positioned between thefirst end 77A and thesecond end 77B of theleft protrusion 77 in the right-left direction. That is, theleft protrusion 77 has a surface that continuously extends between a particular position, which is to the right of the left end of themulti-layered sheet 24 within the medium faceablearea 75, and another particular position, which is to the left of the right end of themulti-layered sheet 24 out of the medium faceablearea 75. This configuration may therefore theblade 46 that pivotally moves toward the cutting position to cut a penetrating slit into each end portion of themulti-layered sheet 24 in the medium width direction readily and reliably. - The closest approach distance may be a value represented by a sum of the first distance and the second distance. During manufacturing the slit-cutting
device 100, if each of the first distance and the second distance is adjusted with reference to the value represented by the sum of the first distance and the second distance, the closest approach distance may be allowed to be set to a value that is greater than 0 (zero) and smaller than the thickness of themulti-layered sheet 24. For example, if one of the first distance and the second distance is greater than the dimension E2, the other of the first distance and the second distance may be reduced by an excess amount from the dimension E2 to make the sum of the first distance and the second distance equal to the dimension E2. Therefore, the slit-cuttingdevice 100 having such a configuration may also cut a non-penetrating slit into themulti-layered sheet 24 reliably. - The first
contactable portion 91 and the secondcontactable portion 61 are both disposed opposite to thesupport shaft 47 with respect to thecutting edge 41. This configuration may decrease a reaction force to be received by thesupport shaft 47 in response to contact of the secondcontactable portion 61 to the firstcontactable portion 91 as compared with a case where the firstcontactable portion 91 and the secondcontactable portion 61 are both disposed on the same side at the side where thesupport shaft 47 is disposed with respect to thecutting edge 41. The closest approach distance is equal to or less than the thickness of therelease material layer 13C. Therefore, the slit-cuttingdevice 100 may reliably cut the entire thickness of both of theouter layer sheet 8 and thebase layer 13A to form anon-penetrating slit 29. - Various changes or modifications may be applied to the slit-cutting
device 100. For example, the orientation of theprinter 1 when used is not limited to the orientation of theprinter 1 ofFIG. 1 . In other example, theprinter 1 including the slit-cuttingdevice 100 may be oriented when used such that the right side surface or the left side surface of thecase 5 may contact a horizontal plane. In this case, thetape cassette 7 may be oriented such that its surface extending both in the top-bottom direction and in the right-left direction inFIG. 1 may face the horizontal plane, and thetape cassette 7 may be attachable to and detachable from theaccommodating portion 17 in the top-bottom direction. When themulti-layered sheet 24 is drawn from thetape cassette 7 in this state, the width direction of themulti-layered sheet 24 may correspond to the top-bottom direction and the thickness direction of themulti-layered sheet 24 may correspond to the right-left direction. The medium faceablearea 75 of thefirst holder 70 and theprotrusions 77 may be disposed so as to extend along the top-bottom direction. Thesecond holder 49 may be configured to pivot in the circumferential direction of thesupport shaft 47 such that thecutting edge 41 of theblade 46 moves toward the medium faceablearea 75. Themulti-layered sheet 24 drawn from thetape cassette 7 may be positioned between the medium faceablearea 75 and thecutting edge 41 while the width direction of themulti-layered sheet 24 corresponds to the top-bottom direction. In this state, also, therelease material layer 13C of themulti-layered sheet 24 may face the medium faceablearea 75. In response to pivoting of thesecond holder 49, thecutting edge 41 may contact themulti-layered sheet 24. As thesecond holder 49 further pivots in the direction in which thecutting edge 41 moves closer to the medium faceablearea 75, thecutting edge 41 may press themulti-layered sheet 24 to contact therelease material layer 13C to theprotrusions 77 disposed at the medium faceablearea 75. When thecutting edge 41 contacts themulti-layered sheet 24 and themulti-layered sheet 24 contacts theprotrusions 77, a relationship among the cuttingedge 41, themulti-layered sheet 24, theprotrusions 77, and the medium faceablearea 75 are as illustrated inFIG. 6 . Accordingly, the slit-cuttingdevice 100 may cut, into themulti-layered sheet 24, a predetermined slit line including non-penetrating slits and penetrating slits, across themulti-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation. - The
first holder 70 of the slit-cuttingdevice 100 might not necessarily be fixed to thecase 5. In other embodiments, for example, thefirst holder 70 may be supported inside thecase 5 so as to be movable relative to thesecond holder 49. In this case, thefirst holder 70 and thesecond holder 49 may be both supported inside thecase 5 so as to be movable relative to a conveyance path of themulti-layered sheet 24. - In other embodiments, for example, the
protrusions 77 may be made of resin, e.g., urethane or silicone, or may be made of fabric. The firstcontactable portion 91 and the secondcontactable portion 61 may be disposed on the same side as the side where thesupport shaft 47 is disposed, with respect to the direction in which thecutting edge 41 extends. Thefirst holder 70 may be configured to pivot on another shaft (not illustrated) extending parallel to thesupport shaft 47. In this case, thefirst holder 70 may be connected to another motor (hereinafter, referred to as a specific motor) instead to the motor 51 (refer toFIG. 4 ). The specific motor and themotor 51 may drive in synchronization with each other to pivot thefirst holder 70 and thesecond holder 49, respectively, in a direction in which thefirst holder 70 and thesecond holder 49. This configuration may enable the slit-cuttingdevice 100 to perform a slit-cutting operation on themulti-layered sheet 24. - Referring to
FIGS. 9 and 10 , a slit-cuttingdevice 101 which may be a variation of the slit-cuttingdevice 100 will be described. An explanation will be given mainly for the parts different from the slit-cuttingdevice 100 of the first illustrative embodiment, and an explanation will be omitted for the common components by assigning the same reference numerals thereto. The slit-cuttingdevice 101 includes a support member (for instance, support shaft 47), asecond holder 59, a firstcontactable portion 92, and afirst holder 71, a secondcontactable portion 62. The support member is fixed to the inside of thecase 5. Themulti-layered sheet 24 may be positioned with itsouter layer sheet 8 facing the support member. That is, themulti-layered sheet 24 may be positioned upside down as compared with themulti-layered sheet 24 positioned in the slit-cuttingdevice 100. The support member is configured to support themulti-layered sheet 24 from below with contacting theouter layer sheet 8. When themulti-layered sheet 24 is supported by the support member, a thickness direction of themulti-layered sheet 24 corresponds to the top-bottom direction and a width direction of themulti-layered sheet 24 corresponds to the right-left direction. Thesecond holder 59 is fixed to the inside of thecase 5. Thesecond holder 59 supports ablade 46. In the slit-cuttingdevice 101, theblade 46 has acutting edge 41 at its upper edge. Thecutting edge 41 extends linearly in the right-left direction. Thecutting edge 41 may contact theouter layer sheet 8 of themulti-layered sheet 24 supported by the support member along a direction in which thecutting edge 41 extends. Thesecond holder 59 includes a protruding portion at its left end portion. The protruding portion protrudes relative to thecutting edge 41 and includes the secondcontactable portion 62 at its protruding end. The secondcontactable portion 62 is a flat surface extending in the front-rear direction and in the right-left direction. - The
first holder 71 is pivotably supported by thesupport shaft 47 that is positioned at a right end portion of thefirst holder 71. That is, thefirst holder 71 is movable relative to thesecond holder 59. Thefirst holder 71 has an elongated hole (not illustrated). The pin 44 (refer toFIG. 4 ) is engaged with the elongated hole of thefirst holder 71 so as to be slidable relative to the elongated hole. This configuration may enable thefirst holder 71 to pivot on thesupport shaft 47 by driving of the motor 51 (refer toFIG. 4 ). - The
first holder 71 has a medium faceablearea 75 at one end surface thereof that may be a leading end surface when thefirst holder 71 pivots on thesupport shaft 47 in a counterclockwise direction when viewed in the axial direction of thesupport shaft 47. The medium faceablearea 75 may face therelease material layer 13C of themulti-layered sheet 24 supported by the support member. A plurality of, for example, twoprotrusions 77 are disposed at the medium faceablearea 75. The protrusion 77 (e.g., the right protrusion 77) positioned closer to thesupport shaft 47 than theother protrusion 77 may face the right end of themulti-layered sheet 24. The other protrusion (e.g., the left protrusion 77) positioned farther from thesupport shaft 47 than the oneprotrusion 77 may face the left end of themulti-layered sheet 24. A protruding amount of eachprotrusion 77 that protrudes from the medium faceablearea 75 toward thecutting edge 41 corresponds to the protruding amount of eachprotrusion 77 of the slit-cutting device 100 (e.g., the dimension L1 ofFIG. 5 ). The firstcontactable portion 92 is included in thefirst holder 71. The firstcontactable portion 92 is a recessed portion that is recessed relative to the medium faceablearea 75. - Referring to
FIG. 10 , a first distance, a second distance, and a closest approach distance in the slit-cuttingdevice 101 will be defined. An absolute value of the first distance may be a shortest distance between an extension of the medium faceablearea 75 of thefirst holder 71 and the firstcontactable portion 92, and correspond to a dimension F1. An absolute value of the second distance may be a shortest distance between an extension of thecutting edge 41 of theblade 46 of thesecond holder 59 and the secondcontactable portion 62, and correspond to a dimension F2. A closest approach distance may be a shortest distance between the medium faceablearea 75 and thecutting edge 41 when the firstcontactable portion 92 and the secondcontactable portion 62 are in contact with each other. The closest approach distance may correspond to a dimension F3. In the slit-cuttingdevice 101, the first distance is represented by a negative real number, and the second distance is represented by a positive real number. The closest approach distance may be a value represented by a sum of the first distance and the second distance. The closest approach distance may be equal to or less than a thickness of therelease material layer 13C (refer toFIG. 3 ) of themulti-layered sheet 24. The closest approach distance in the slit-cuttingdevice 101 is equal to the closest approach distance in the slit-cutting device 100 (e.g., the dimension E1 ofFIG. 6 ). - As illustrated in
FIGS. 9 and 10 , thefirst holder 71 pivots on thesupport shaft 47 toward theblade 46 by driving of the motor 51 (refer toFIG. 4 ). As the firstcontactable portion 92 and the secondcontactable portion 62 contact each other, theblade 46 reaches the cutting position and themotor 51 stops driving for pivoting thefirst holder 71. The protruding amount of eachprotrusion 77 from the medium faceablearea 75 is greater than or equal to the closest approach distance. Therefore, when theblade 46 reaches the cutting position, thecutting edge 41 and theprotrusions 77 pinch themulti-layered sheet 24 therebetween and thus a penetrating slit is cut into themulti-layered sheet 24 at each location where thecutting edge 41 and a corresponding one of theprotrusions 77 face each other. In this state, thecutting edge 41 penetrates into theprotrusions 77. On the other hand, the closest approach distance is less than the thickness of themulti-layered sheet 24. Therefore, when theblade 46 reaches the cutting position, thecutting edge 41 and the medium faceablearea 75 pinch themulti-layered sheet 24 therebetween and thus a non-penetrating slit is cut into themulti-layered sheet 24 at a location where thecutting edge 41 and the medium faceablearea 75 face each other. That is, therelease material layer 13C is cut incompletely in the medium thickness direction. Accordingly, the slit-cuttingdevice 101 may cut, into themulti-layered sheet 24, a predetermined slit line including both a non-penetrating slit and penetrating slits, across themulti-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation. - Referring to
FIGS. 11 to 14 , a slit-cuttingdevice 200 according to a second illustrative embodiment will be described. An explanation will be given mainly for the parts different from the slit-cuttingdevice 100 of the first illustrative embodiment, and an explanation will be omitted for the common components by assigning the same reference numerals thereto. - The slit-cutting
device 200 includes aprotrusion 78 instead of theprotrusions 77. Theprotrusion 78 is disposed at a substantially middle portion of a medium faceablearea 75 of afirst holder 70 in the right-left direction. The medium faceablearea 75 may face end portions of themulti-layered sheet 24 in the medium width direction. Theprotrusion 78 includes a plurality of, for example, twowalls 79. Thewalls 79 extend along the right-left direction. Thewalls 79 are spaced from each other to define therebetween apredetermined area 75A in the medium faceablearea 75 and are disposed next to each other in the front-rear direction. Thepredetermined area 75A is included in the medium faceablearea 75. Thepredetermined area 75A may face a middle portion of thecutting edge 41 that moves pivotably in the circumferential direction of thesupport shaft 47. A protruding amount of theprotrusion 78 that protrudes from the medium faceablearea 75 toward thecutting edge 41 corresponds to a dimension L2 inFIG. 12 . The protruding amount of theprotrusion 78 corresponds to a height of thewalls 79. Each of thewalls 79 has anupper end surface 79A and side end surfaces 79B. Theupper end surface 79A may face and contact a middle portion of therelease material layer 13C (refer toFIG. 3 ) in the medium width direction. The side end surfaces 79B are disposed to the respective sides of theupper end surface 79A in eachwall 79B in the right-left direction. The side end surfaces 79B extend diagonally downward from theupper end surface 79A in opposite directions with respect to the right-left direction. - The slit-cutting
device 200 includes a firstcontactable portion 93 instead of the firstcontactable portion 91 of the first illustrative embodiment. Thefirst holder 70 includes a protruding portion disposed to the left of the medium faceablearea 75. The protruding portion protrudes relative to the medium faceablearea 75. The protruding portion includes the firstcontactable portion 93 at its protruding end. The firstcontactable portion 93 is a flat surface extending in the front-rear direction and in the right-left direction. The slit-cuttingdevice 200 further includes a secondcontactable portion 63 instead of the secondcontactable portion 61 of the first illustrative embodiment. The secondcontactable portion 63 is included in asecond holder 49. The secondcontactable portion 63 is a flat surface that is disposed opposite to thefirst holder 70 relative to thecutting edge 41 in the circumferential direction of thesupport shaft 47. The secondcontactable portion 63 may face the firstcontactable portion 93 in the circumferential direction of thesupport shaft 47. - Referring to
FIG. 13 , a first distance, a second distance, and a closest approach distance in the slit-cuttingdevice 200 will be defined. An absolute value of the first distance may be a shortest distance between an extension of the medium faceablearea 75 of thefirst holder 70 and the firstcontactable portion 93, and correspond to a dimension G1. An absolute value of the second distance may be a shortest distance between an extension of thecutting edge 41 of theblade 46 of thesecond holder 49 and the secondcontactable portion 63, and correspond to a dimension G2. A closest approach distance may be a shortest distance between the medium faceablearea 75 and thecutting edge 41 when the firstcontactable portion 93 and the secondcontactable portion 63 are in contact with each other. The closest approach distance corresponds to a dimension G3. In the slit-cuttingdevice 200, the first distance is represented by a positive real number, and the second distance is represented by a negative real number. The closest approach distance may be a value greater than 0 (zero) which is represented by a sum of the first distance and the second distance. The closest approach distance may be equal to or less than a thickness of therelease material layer 13C (refer toFIG. 3 ) of themulti-layered sheet 24. The closest approach distance is less than the protruding amount of eachwall 79 from the medium faceable area 79 (e.g., the dimension L2 ofFIG. 12 ). - Referring to
FIGS. 11, 13, and 14 , an operation performed by the slit-cuttingdevice 200 will be described. Theblade 46 and thesecond holder 49 pivot on thesupport shaft 47 toward the first holder 70 (e.g., an arrow H ofFIG. 11 ) by driving of the motor 51 (refer toFIG. 4 ). The protruding amount of eachwall 79 from the medium faceablearea 75 is greater than or equal to the closest approach distance. Therefore, before the secondcontactable portion 63 contacts the firstcontactable portion 93, thecutting edge 41 enters between thewalls 79 by penetrating through themulti-layered sheet 24 that faces the upper end surfaces 79A of thewalls 79. Thus, thecutting edge 41 cuts a penetrating slit into a middle portion of themulti-layered sheet 24 in the medium width direction. The middle portion of themulti-layered sheet 24 faces the upper end surfaces 79A of thewalls 79. In this state, thecutting edge 41 and the medium faceablearea 75 sandwich the other portions of themulti-layered sheet 24 therebetween. The other portions of themulti-layered sheet 24 do not face theprotrusion 78 and are located to the right and left, respectively, of theprotrusion 78. As the firstcontactable portion 63 and the secondcontactable portion 93 contact each other, theblade 46 reaches the cutting position and the motor 51 (refer toFIG. 4 ) stops driving for pivoting thefirst holder 71. In this state, thecutting edge 41 extends linearly in the right-left direction. The closest approach distance is less than a thickness of themulti-layered sheet 24. Therefore, when theblade 46 reaches the cutting position, thecutting edge 41 cuts non-penetrating slits into themulti-layered sheet 24 at respective locations to the right and left of theprotrusion 78. Thus, the slit-cuttingdevice 200 may cut, into themulti-layered sheet 24, a slit line including anon-penetrating slit 29, a penetratingslit 28, and another non-penetrating slit 29 successively, along the entire width of the multi-layered sheet 24 (refer toFIG. 14 ). - According to the second illustrative embodiment, the range in which the
second holder 49 supported by thesupport shaft 47 moves relative to thefirst holder 70 corresponds to the range in which thecutting edge 41 moves closer to or away from themulti-layered sheet 24. Thecutting edge 41 cuts a penetrating slit into themulti-layered sheet 24 at the location where thecutting edge 41 faces theprotrusion 78, and also cuts non-penetrating slits into themulti-layered sheet 24 at the other locations where thecutting edge 41 does not face theprotrusion 78. Accordingly, the slit-cuttingdevice 200 may cut a predetermined slit line including both the non-penetrating slits and the penetrating slit, into themulti-layered sheet 24, along thecutting edge 41 of theblade 46 located at the cutting position, in a single slit-cutting operation. Accordingly, the second illustrative embodiment may implement the slit-cuttingdevice 200 that may cut, into themulti-layered sheet 24, a predetermined slit line including both a non-penetrating slit and a penetrating slit, across themulti-layered sheet 24 with respect to the medium width direction, in a single slit-cutting operation. - The
protrusion 78 is disposed at the medium faceablearea 75 of thefirst holder 70 such that theprotrusion 78 may face a substantially middle portion of themulti-layered sheet 24 facing the medium faceablearea 75 in the medium width direction. This configuration may therefore enable the slit-cuttingdevice 200 to cut a penetrating slit into a substantially middle portion of themulti-layered sheet 24 in the medium width direction. Thus, the user may put a fingertip at the penetrating slit formed in the substantially middle portion of themulti-layered sheet 24 in the medium width direction to remove theouter layer sheet 8 and thebase layer 13A from therelease material layer 13C. Such amulti-layered sheet 24 may therefore enable the user to easily remove theouter layer sheet 8 and thebase layer 13A from therelease material layer 13C. - Referring to
FIGS. 15 and 16 , a slit-cuttingdevice 300 according to a third illustrative embodiment will be described. An explanation will be given mainly for the parts different from the slit-cuttingdevice 100 of the first illustrative embodiment, and an explanation will be omitted for the common components by assigning the same reference numerals thereto. [0066] The slit-cuttingdevice 300 includes aslide rail 48, asecond holder 69, a support table 90, afirst holder 72,elastic members 88, a firstcontactable portion 94, andprotrusions 87. Theslide rail 48 includes a fixed rail (not illustrated) and a movable rail (not illustrated). The fixed rail is fixed to the inside of the case 5 (refer toFIG. 2 ) and extends in the top-bottom direction. The movable rail extends in the top-bottom direction. The movable rail is connected to the fixed rail so as to be movable relative to the fixed rail in the top-bottom direction. Thesecond holder 69 is fixed to the movable rail of theslide rail 48. Therefore, thesecond holder 69 is supported by theslide rail 48 so as to be movable up and down and is movable relative to thefirst holder 72. Thesecond holder 69 supports ablade 46. Theblade 46 has acutting edge 41 at its lower edge. Thecutting edge 41 extends linearly in the right-left direction. Thesecond holder 69 is connected to the lever disposed at thecase 5. In response to a user's operation of the lever, thesecond holder 69 moves up and down via theslide rail 48 to move theblade 46 between a non-cutting position (refer toFIG. 15 ) and a cutting position (refer toFIG. 16 ). - The support table 90 is disposed below the
second holder 69 and is fixed facing thesecond holder 69. The support table 90 has a recessedportion 99 that is recessed downward. Thefirst holder 72 is disposed in the recessedportion 99 so as to be movable up and down. Thefirst holder 72 has a dimension in the top-bottom direction (e.g., a height) shorter than a dimension in the top-bottom direction (e.g., a depth) of the recessedportion 99. Thefirst holder 72 has a medium faceablearea 75 at its upper end surface. The medium faceablearea 75 may face themulti-layered sheet 24. The medium faceablearea 75 may face thecutting edge 41 in the top-bottom direction. The medium faceablearea 75 may face therelease material layer 13C (refer toFIG. 3 ) of themulti-layered sheet 24. Theelastic members 88 are disposed in the recessedportion 99. Theelastic members 88 urge thefirst holder 72 upward. Each of theelastic members 88 may be, for example, a compression spring. Each of theelastic members 88 has a lower end that is fixed to the recessedportion 99, and an upper end that is fixed to a lower end of thefirst holder 72. Thefirst holder 72 and theelastic members 88 each has a dimension in the top-bottom direction such that a sum of the dimension of thefirst holder 72 in the top-bottom direction and a length of anelastic member 88 in a most contracted state is less than a distance between a bottom end of an open space where thefirst holder 72 is disposed in the recessedportion 99 and an upper end of the open space of the recessedportion 99. When theblade 46 is located at the non-cutting position, the upper end surface of thefirst holder 72, i.e., the medium faceablearea 75, is located slightly above the upper end of the open space of the recessed portion 99 (refer toFIG. 15 ). In the state where theblade 46 is located at the non-cutting position, a distance between the medium faceablearea 75 and the bottom end of the open space of the recessedportion 99 may be greater than the sum of the dimension of thefirst holder 72 in the top-bottom direction and the length of anelastic member 88 in the most contracted state. In other embodiments, if the end portions of thecutting edge 41 in the right-left direction are located inside the open space of the recessedportion 99 in the right-left direction, the medium faceablearea 75 might not necessarily be located above the upper end of the recessedportion 99. The firstcontactable portion 94 is included in the support table 90. In the third illustrative embodiment, the support table 90 includes another recessed portion that includes the firstcontactable portion 94 at its bottom. The firstcontactable portion 94 constitutes a portion of an upper end surface of the support table 90. The firstcontactable portion 94 is located below the upper end of the recessedportion 99. - Each of the
protrusions 87 may be a plate-shaped metallic member and may be made of material harder than the cuttingedge 41. Theprotrusions 87 are disposed with partially overlapping a left end portion and a right end portion, respectively, of the medium faceablearea 75. Theprotrusions 87 are connected to theelastic members 88 indirectly via thefirst holder 72. That is, force that theprotrusions 87 has received from thecutting edge 41 transfers to thefirst holder 72 and further transfers to theelastic members 88. Theprotrusions 87 may face the right and left ends, respectively, of therelease material layer 13C (refer toFIG. 3 ) of themulti-layered sheet 24. A protruding amount of eachprotrusion 87 that protrudes from the medium faceablearea 75 toward thecutting edge 41 corresponds to a dimension L3. Thesecond holder 69 includes a secondcontactable portion 64. Thesecond holder 69 includes a protruding portion disposed to the left of thecutting edge 41. The protruding portion protrudes relative to thecutting edge 41. The protruding portion includes the secondcontactable portion 64 at its protruding end. The secondcontactable portion 63 is a flat surface extending in the front-rear direction and in the right-left direction. The secondcontactable portion 63 faces the firstcontactable portion 94 in the top-bottom direction. The secondcontactable portion 64 needs to be disposed on at least one of the right side and the left side of thecutting edge 41. Therefore, in other embodiments, for example, the secondcontactable portion 64 may be disposed to the right of thecutting edge 41. - Referring to
FIG. 16 , a first distance, a second distance, and a closest approach distance in the slit-cuttingdevice 300 will be defined. An absolute value of the first distance may be a shortest distance between an extension of the medium faceablearea 75 of thefirst holder 72 and the firstcontactable portion 94 of the support table 90, and correspond to a dimension H1. An absolute value of the second distance may be a shortest distance between an extension of thecutting edge 41 of theblade 46 of thesecond holder 69 and the secondcontactable portion 64, and correspond to a dimension H2. The closest approach distance may correspond to a dimension H3. In the slit-cuttingdevice 300, the first distance is represented by a negative real number, and the second distance is represented by a positive real number. The closest approach distance may be a shortest distance between the medium faceablearea 75 and thecutting edge 41 when the firstcontactable portion 94 and the secondcontactable portion 64 are in contact with each other. The closest approach distance is greater than 0 (zero) which is the sum of the first distance and the second distance. The closest approach distance is less than the thickness of themulti-layered sheet 24. In the third illustrative embodiment, the closest approach distance is equal to the protruding amount of eachprotrusion 87 from the medium faceable area 75 (e.g., a dimension L3 ofFIG. 15 ). - Referring to
FIGS. 15 and 16 , an operation performed by the slit-cuttingdevice 300 will be described. The user operates the lever to move thesecond holder 69 downward. In response to this, theblade 46 moves downward from the non-cutting position. The protruding amount of eachprotrusion 87 from the medium faceable area 75 (e.g., the dimension L3 ofFIG. 15 ) is greater than or equal to the closest approach distance. Therefore, before the secondcontactable portion 64 contacts the firstcontactable portion 94, thecutting edge 41 and theprotrusions 87 sandwiches themulti-layered sheet 24 therebetween. - The
blade 46 further moves downward to cause thecutting edge 41 and the medium faceablearea 75 to sandwich themulti-layered sheet 24 therebetween. In accordance with the downward movement of theblade 46, thefirst holder 72 moves downward against elastic force of theelastic members 88. In other words, elastic deformation of theelastic members 88 allow the downward movement of thefirst holder 72. As elastic deformation of theelastic members 88 increases, the elastic force that theelastic members 88 apply to thefirst holder 72 increases correspondingly. This therefore increases the force that thecutting edge 41 and theprotrusions 87 sandwich themulti-layered sheet 24 therebetween and the force that thecutting edge 41 and the medium faceablearea 75 sandwich themulti-layered sheet 24 therebetween. - Before the second
contactable portion 64 contacts the firstcontactable portion 94, thecutting edge 41 cuts penetrating slits into themulti-layered sheet 24 at respective locations where thecutting edge 41 faces theprotrusions 87, and thus thecutting edge 41 contacts theprotrusions 87. Simultaneously, thecutting edge 41 cuts a non-penetrating slit into themulti-layered sheet 24 at another location where thecutting edge 41 faces the medium faceablearea 75. Therefore, a slit line including a penetratingslit 28, anon-penetrating slit 29, and another penetratingslit 28 successively is cut into themulti-layered sheet 24 across themulti-layered sheet 24 with respect to the medium width direction. When the secondcontactable portion 64 contacts the firstcontactable portion 94, theblade 46 reaches the cutting position. When theblade 46 is located at the cutting position, theblade 46 presses thefirst holder 72 via themulti-layered sheet 24 and thus the medium faceablearea 75 is flush with the upper end of the recessed portion 99 (refer toFIG. 16 ). - According to the third illustrative embodiment, the range in which the
second holder 69 supported by theslide rail 48 moves relative to thefirst holder 72 corresponds to the range in which thecutting edge 41 moves closer to or away from themulti-layered sheet 24. Thecutting edge 41 cuts penetrating slits into themulti-layered sheet 24 at respective locations where thecutting edge 41 faces theprotrusions 87, and also cuts a non-penetrating slit into themulti-layered sheet 24 at another location where thecutting edge 41 face the medium faceablearea 75. Accordingly, the slit-cuttingdevice 300 may cut, into themulti-layered sheet 24, a slit line including both the non-penetrating slit and the penetrating slits, across themulti-layered sheet 24 with respect to the medium width direction, along thecutting edge 41 located at the cutting position, in a single slit-cutting operation. Accordingly, the third illustrative embodiment may implement the slit-cuttingdevice 300 that may cut, into themulti-layered sheet 24, a predetermined slit line including both a non-penetrating slit and a penetrating slit, in a single slit-cutting operation. - Various changes or modifications may be applied to the slit-cutting
device 300. Referring toFIGS. 17 and 18 , a slit-cuttingdevice 301 which may be a variation of the slit-cuttingdevice 300 will be described. An explanation will be given mainly for the parts different from the slit-cuttingdevice 300 of the third illustrative embodiment, and an explanation will be omitted for the common components by assigning the same reference numerals thereto. - The slit-cutting
device 301 includes a support table 98 instead of the support table 90. The support table 98 has a recessedportion 99. Afirst holder 73, which is different from thefirst holder 72, is disposed in the recessedportion 99. Thefirst holder 73 is made of an elastically deformable material. Thefirst holder 73 has a medium faceablearea 75 at its upper end surface. When ablade 460 is located at the non-cutting position, the medium faceablearea 75 is located above the upper end of the recessedportion 99. InFIGS. 17 and 18 , for purposes of clear illustration, thefirst holder 73 is hatched. - A plurality of
protrusions 87 are disposed at the medium faceablearea 75. Theprotrusions 87 are connected to thefirst holder 87 directly. That is, force that theprotrusions 87 has received from thecutting edge 41 transfers to thefirst holder 73 from theprotrusions 87. The support table 98 includes a firstcontactable portion 95. The firstcontactable portion 95 is a flat surface that constitutes a portion of an upper end surface of the support table 98 and that extends in the horizontal direction. The firstcontactable portion 95 is flush with the upper end of the recessedportion 99. - The slit-cutting
device 301 further includes asecond holder 89 instead of thesecond holder 69. Thesecond holder 89 is supported by theslide rail 48 so as to be movable up and down. Thesecond holder 89 is connected to the lever (not illustrated) disposed at thecase 5. The slit-cuttingdevice 301 includes theblade 460 instead of theblade 46. Theblade 460 includes acutting edge 41 and a secondcontactable portion 65 that is disposed at a different position than the cuttingedge 41. The secondcontactable portion 65 is a flat surface that extends in the horizontal direction. The secondcontactable portion 65 is flush with thecutting edge 41 of theblade 46. - Referring to
FIG. 18 , a first distance, a second distance, and a closest approach distance in the slit-cuttingdevice 301 will be defined. An absolute value of the first distance when the firstcontactable portion 95 and the secondcontactable portion 65 are in contact with each other correspond to a dimension J2. The second distance is 0 (zero). The first distance is represented by a positive real number. The closest approach distance is equal to the first distance (e.g., the dimension H2) and less than the thickness of themulti-layered sheet 24. The closest approach distance is equal to the protruding amount of eachprotrusion 87 from the medium faceable area (e.g., a dimension L4 ofFIG. 17 ). - Similar to the slit-cutting
device 300, in the slit-cuttingdevice 301, the user manually operates the lever to move theblade 46 from the non-cutting position to the cutting position. Before the secondcontactable portion 65 contacts the firstcontactable portion 95, thecutting edge 41 penetrates into some layers of themulti-layered sheet 24 at locations where thecutting edge 41 faces theprotrusions 87 and sandwiches themulti-layered sheet 24 in cooperation with the medium faceablearea 75 at a location where thecutting edge 41 faces the medium faceablearea 75. Elastic deformation of thefirst holder 73 allows the downward movement of theprotrusions 87. When the secondcontactable portion 65 contacts the firstcontactable portion 95, theblade 460 reaches the cutting position (refer toFIG. 18 ). Thecutting edge 41 cuts penetrating slits into themulti-layered sheet 24 at respective locations where thecutting edge 41 faces theprotrusions 87, and also cuts a non-penetrating slit into themulti-layered sheet 24 at another location where thecutting edge 41 face the medium faceablearea 75. - Referring to
FIG. 19 , a slit-cuttingdevice 401 which may be a variation of the slit-cuttingdevice 100 of the first illustrative embodiment will be described. The slit-cuttingdevice 401 includes a first contactable portion 96 and a secondcontactable portion 66. Thefirst holder 70 includes a protruding portion that protrudes relative to the medium faceablearea 75 toward thecutting edge 41. The protruding portion of thefirst holder 70 includes the first contactable portion 96 at its top end. Thesecond holder 49 includes a protruding portion that protrudes relative to thecutting edge 41 toward the medium faceablearea 75. The protruding portion of thesecond holder 49 includes the secondcontactable portion 66 at its bottom end. The first distance when the first contactable portion 96 and the secondcontactable portion 66 are in contact with each other is represented by a positive real number similar to the slit-cutting device 200 (refer toFIG. 13 ) and corresponds to a dimension K1. The second distance when the first contactable portion 96 and the secondcontactable portion 66 are in contact with each other is represented by a positive real number similar to the slit-cutting device 100 (refer toFIG. 6 ) and corresponds to a dimension K2. In the slit-cuttingdevice 401, similar to the above-described illustrative embodiments, the closest approach distance is a value represented by the sum of the first distance and the second distance. - According to the one or more aspects of the disclosure, in a single slit-cutting operation, the cutting edge may cut a penetrating slit into the medium at a location where the cutting edge faces the protrusion, and also cut a non-penetrating slit into the medium at another location where the cutting edge faces the medium faceable area. Therefore, the slit-cutting device may cut both a non-penetrating slit and a penetrating slit in the medium along the cutting edge in a single slit-cutting operation. Accordingly, some embodiments of the disclosure may implement the slit-cutting device that may cut a predetermined slit line including both a non-penetrating slit and a penetrating slit, into a medium in a single slit-cutting operation.
Claims (19)
Priority Applications (1)
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| US17/458,834 US11883972B2 (en) | 2017-03-31 | 2021-08-27 | Slit-cutting device |
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| JP2017-073167 | 2017-03-31 |
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20210237489A1 (en) * | 2020-01-30 | 2021-08-05 | Brother Kogyo Kabushiki Kaisha | Cutting device and printer |
| US11285742B2 (en) | 2019-05-22 | 2022-03-29 | Seiko Epson Corporation | Half cutter and tape printing apparatus |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102019117180A1 (en) * | 2019-06-26 | 2020-12-31 | Hauni Maschinenbau Gmbh | Device and method for connecting two webs of material each running off a reel |
| JP7409113B2 (en) * | 2020-01-30 | 2024-01-09 | ブラザー工業株式会社 | cutting equipment and printers |
| JP7437636B1 (en) | 2022-11-04 | 2024-02-26 | 有限会社和田技研 | slicer |
Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2999313A (en) * | 1957-07-22 | 1961-09-12 | Fedco Corp | Tape dispenser |
| US3227024A (en) * | 1963-02-27 | 1966-01-04 | Charles H Krebs | Sample cutter |
| US5160573A (en) * | 1990-03-22 | 1992-11-03 | Brother Kogyo Kabushiki Kaisha | Tape cutter device |
| US6113294A (en) * | 1998-03-31 | 2000-09-05 | Brother Kogyo Kabushiki Kaisha | Tape printer |
| US20050061132A1 (en) * | 2003-08-19 | 2005-03-24 | Seiko Epson Corporation | Cutter unit, half-cutting mechanism, and tape printer |
| US7357585B2 (en) * | 2004-07-08 | 2008-04-15 | Seiko Epson Corporation | Printing tape, tape cartridge provided therewith, and tape printing apparatus |
| US20170321090A1 (en) * | 2014-11-11 | 2017-11-09 | Nichiban Co., Ltd. | Tape for label writer |
Family Cites Families (13)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS537356B2 (en) * | 1974-02-27 | 1978-03-16 | ||
| JPS5913713B2 (en) | 1976-07-09 | 1984-03-31 | 日昌興業株式会社 | Buried nonmetallic pipe detection method |
| JP2775555B2 (en) * | 1992-08-14 | 1998-07-16 | 株式会社 江東彫刻 | Method for manufacturing stepped anvil roll of multi-layer sheet material processing apparatus using a pair of rolls |
| JP3165879B2 (en) * | 1995-03-03 | 2001-05-14 | 日本タイプライター株式会社 | Tube or label tape printer cutting device |
| JP2001225399A (en) * | 2000-02-16 | 2001-08-21 | Fuji Photo Film Co Ltd | Punching mold for sheet article, method for preparing it, and apparatus for preparing it |
| JP3425138B2 (en) * | 2001-06-29 | 2003-07-07 | 株式会社坂戸工作所 | Industrial waste cutting device and its cutting method |
| JP2004243616A (en) | 2003-02-13 | 2004-09-02 | Seiko Epson Corp | Tape printer, program, and storage medium |
| KR100569169B1 (en) | 2003-02-13 | 2006-04-07 | 세이코 엡슨 가부시키가이샤 | Tape printing apparatus, label producing method, and storage medium |
| JP3959055B2 (en) * | 2003-08-19 | 2007-08-15 | セイコーエプソン株式会社 | Cutter unit and tape printer |
| JP4337937B2 (en) * | 2008-05-30 | 2009-09-30 | ブラザー工業株式会社 | Tape printer |
| JP4337936B2 (en) * | 2008-05-30 | 2009-09-30 | ブラザー工業株式会社 | Tape printer |
| WO2012133247A1 (en) * | 2011-03-28 | 2012-10-04 | ブラザー工業株式会社 | Print label creation device and cutting blade receiving member |
| CN202847133U (en) * | 2012-09-12 | 2013-04-03 | 孙运金 | Sliding type paper cutting device for miniprinter |
-
2017
- 2017-03-31 JP JP2017073167A patent/JP6988135B2/en active Active
- 2017-09-28 US US15/718,167 patent/US20180281221A1/en not_active Abandoned
- 2017-12-25 CN CN201711419455.7A patent/CN108688350B/en active Active
-
2021
- 2021-08-27 US US17/458,834 patent/US11883972B2/en active Active
Patent Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2999313A (en) * | 1957-07-22 | 1961-09-12 | Fedco Corp | Tape dispenser |
| US3227024A (en) * | 1963-02-27 | 1966-01-04 | Charles H Krebs | Sample cutter |
| US5160573A (en) * | 1990-03-22 | 1992-11-03 | Brother Kogyo Kabushiki Kaisha | Tape cutter device |
| US6113294A (en) * | 1998-03-31 | 2000-09-05 | Brother Kogyo Kabushiki Kaisha | Tape printer |
| US20050061132A1 (en) * | 2003-08-19 | 2005-03-24 | Seiko Epson Corporation | Cutter unit, half-cutting mechanism, and tape printer |
| US7357585B2 (en) * | 2004-07-08 | 2008-04-15 | Seiko Epson Corporation | Printing tape, tape cartridge provided therewith, and tape printing apparatus |
| US20170321090A1 (en) * | 2014-11-11 | 2017-11-09 | Nichiban Co., Ltd. | Tape for label writer |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11285742B2 (en) | 2019-05-22 | 2022-03-29 | Seiko Epson Corporation | Half cutter and tape printing apparatus |
| US20210237489A1 (en) * | 2020-01-30 | 2021-08-05 | Brother Kogyo Kabushiki Kaisha | Cutting device and printer |
| US11485153B2 (en) * | 2020-01-30 | 2022-11-01 | Brother Kogyo Kabushiki Kaisha | Cutting device and printer |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2018171697A (en) | 2018-11-08 |
| US20210387369A1 (en) | 2021-12-16 |
| CN108688350A (en) | 2018-10-23 |
| JP6988135B2 (en) | 2022-01-05 |
| CN108688350B (en) | 2020-11-27 |
| US11883972B2 (en) | 2024-01-30 |
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