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WO2017024381A1 - Post-mold alignment and alignment monitoring - Google Patents

Post-mold alignment and alignment monitoring Download PDF

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Publication number
WO2017024381A1
WO2017024381A1 PCT/CA2016/050703 CA2016050703W WO2017024381A1 WO 2017024381 A1 WO2017024381 A1 WO 2017024381A1 CA 2016050703 W CA2016050703 W CA 2016050703W WO 2017024381 A1 WO2017024381 A1 WO 2017024381A1
Authority
WO
WIPO (PCT)
Prior art keywords
post
mold
alignment
corner
sensors
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.)
Ceased
Application number
PCT/CA2016/050703
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English (en)
French (fr)
Inventor
Zhiming Wang
Vijay Gopichand PANJWANI
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Husky Injection Molding Systems Ltd
Original Assignee
Husky Injection Molding Systems Ltd
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Husky Injection Molding Systems Ltd filed Critical Husky Injection Molding Systems Ltd
Priority to CN201680040907.8A priority Critical patent/CN107848177B/zh
Publication of WO2017024381A1 publication Critical patent/WO2017024381A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C45/00Injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould; Apparatus therefor
    • B29C45/17Component parts, details or accessories; Auxiliary operations
    • B29C45/76Measuring, controlling or regulating
    • B29C45/78Measuring, controlling or regulating of temperature
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C45/00Injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould; Apparatus therefor
    • B29C45/17Component parts, details or accessories; Auxiliary operations
    • B29C45/76Measuring, controlling or regulating
    • B29C45/80Measuring, controlling or regulating of relative position of mould parts

Definitions

  • the disclosed embodiments are generally directed to injection molding machines, and more particularly to systems for post-mold alignment and alignment monitoring.
  • Post-mold conditioners are known for use with injection molding machines to handle and condition the molded parts.
  • the post- mold conditioner are known to include various post-mold devices that are coupled to the platens of a mold clamp of the injection molding machine.
  • a cooling plate coupled to a moving platen may be configured to cool the molded parts retained within a take-off plate that is coupled to a stationary platen whenever the platens are arranged to clamp a mold in a molding configuration.
  • having proper alignment between the take-off plate and the cooling plate may be important for equipment life and for part handling.
  • Known structures used to align these parts do not provide a satisfactory solution.
  • a post-mold conditioner of an injection molding machine for conditioning molded articles includes first and second post-mold devices.
  • the first and second post-mold devices are moveable toward and away from one another, and the first post-mold device has a first side in facing relationship with a corresponding second side of the second post-mold device.
  • the post-mold conditioner further includes two or more parallel alignment sensors located on one of the first and second sides and two or more corresponding parallel alignment sensor receivers located on the other of the first and second side, and two or more angular alignment sensors located on one of the first and second sides and two or more corresponding angular alignment sensor receivers located on the other of the first and second side.
  • a post-mold conditioner of an injection molding machine for conditioning molded articles includes first and second post- mold device.
  • the first post-mold device has a first side in facing relationship with a corresponding second side of the second post-mold device.
  • the post-mold conditioner further includes first and second parallel alignment sensors located on the first side and first and second corresponding parallel alignment sensor receivers located on the second side, and first and second angular alignment sensors located on the first side and first and second corresponding angular alignment sensor receivers located the second side.
  • the first and second parallel alignment sensors are located at first and second corners of the first side, respectively, and the first and second angular alignment sensors are located at third and fourth corners of the first side, respectively.
  • the first corner is one of the top right corner and top left corner and the third corner is the other of the top right corner and top left corner.
  • the first corner is the top right corner
  • the second corner is the bottom left corner
  • the fourth corner is the bottom right corner.
  • the first corner is the top left corner
  • the second corner is the bottom right corner and the fourth corner is the bottom left corner.
  • a method of monitoring the alignment of a post-mold conditioner having first and second post-mold devices includes evaluating a parallel alignment of the first and second post-mold devices via first and second parallel alignment sensors and corresponding first and second parallel alignment sensor receiver, evaluating an angular alignment of the first and second post-mold devices via first and second angular alignment sensors and corresponding first and second angular alignment sensor receivers, and alerting an operator when the first and second post-mold devices are not parallel or when the first and second-post mold devices are angularly misaligned.
  • FIG. 1A is a side view of aligned post-mold devices according to one aspect
  • FIG. IB is a bottom view of the post-mold devices of FIG. 1 A;
  • FIG. 1C is a front view of the post-mold devices of FIG. 1A;
  • FIG. ID is an enlarged view of an aligned receptacle and cooling pin of FIG. 1C.
  • FIG. 2A is a top view of an injection molding machine according to the prior art
  • FIG. 2B is a top view of a conditioning device of the injection molding machine of FIG. 2A;
  • FIG. 3A is a side view of an alignment device according to the prior art, in an partially engaged position
  • FIG. 3B is a side view of the alignment device of FIG. 3A, in a fully engaged position
  • FIG. 4A is a side view of a post-mold alignment system according to one aspect, in a closed position
  • FIG. 4B is a side view of the post mold-alignment system of FIG. 4A, in an open position;
  • FIGS. 5A-5C are front, side and bottom views, respectively, of post-mold devices with vertical misalignment
  • FIGS. 6A-6C are front, side and bottom views, respectively, of post-mold devices with horizontal misalignment;
  • FIGS. 7A-7C are front, side and bottom views of post-mold devices with angular misalignment;
  • FIG. 8 is a rear view of a conditioning device of a post-mold cooling plate;
  • FIG. 9 is a perspective view of the post- mold devices of FIG. 1 C.
  • Injection molding machines are used to produce plastic molded parts, and typically, such machines include platens onto which a mold, also referred to as a tool, is fastened.
  • a conditioning device such as a cooling device is attached to a moveable platen to condition (e.g., cool) the molded parts.
  • maintaining proper alignment between the conditioning device and a take-off plate attached to a stationary platen may be important for equipment life and for part handling.
  • alignment is accomplished via a physical device, such as a pin or plug, that is attachable between the cooling device and the take-off plate during an alignment protocol but that is otherwise removable.
  • Applicant has realized that by providing no-contact, real-time alignment and alignment monitoring between post-mold devices (e.g., the cooling plate and the take-off plate), various advantages may be realized. Applicant has further realized that advantages may be realized by monitoring the alignment of these post-mold devices while the machine is in use, such that any discovered misalignments may be corrected.
  • embodiments disclosed herein include a no-contact alignment and alignment monitoring system with a post-mold conditioner having a plurality of parallel alignment sensors and receivers on corresponding sides of first and second post-mold devices, respectively.
  • the conditioner further includes a plurality of angular alignment sensors and corresponding receivers located on the corresponding sides. Feedback from the sensors is sent to a controller, which may monitor alignment of the devices while in-use and provide alarms to an operator when there are misalignments. As will be described, the controller evaluates parallel alignment and angular alignment of the post-mold devices.
  • alignment of the post-mold conditioner may include vertical-parallel alignment, horizontal-parallel alignment and angular alignment.
  • vertical-parallel alignment may mean the vertical axes A3a, A3b of the post-mold devices 102, 104 are parallel to one another.
  • Horizontal-parallel alignment is illustrated in FIGS. IB and 9, in which the longitudinal axes Ala, Alb of the post-mold devices 102, 104 are parallel to one another.
  • FIGS. 1C and 9 illustrate angular alignment, in which the sensors are in an overlapping relationship with the corresponding receivers. As shown in FIG.
  • a surface plane defined by axes Ala and A3a of the plenum/cooling plate may be parallel to a surface plane defined by axes Alb and A3b of the take-off plate.
  • the rotational axes A4a, A4b of the cooling plate and the take-off plate may be parallel to one another.
  • the axes Alb, A2b, A3b, A4b of the take-off plate 437 remain constant while the axes Ala, A2a, A3a, A4a of the cooling plate 443 may change with respect thereto. That is, the take-off plate, in some embodiments, may be relatively fixed whereas the cooling plate may be more susceptible to misalignment during use.
  • the conditioner may have multiple points of alignment, or misalignment, as the case may be.
  • the conditioner may have both vertical-parallel alignment and angular alignment, but have horizontal-parallel misalignment.
  • the conditioner also may be completely aligned, having vertical-parallel alignment, horizontal-parallel alignment and angular alignment or may be completely misaligned, having vertical-parallel misalignment, horizontal-parallel misalignment and angular misalignment.
  • providing no-contact alignment reduces the likelihood of human errors, and any resulting equipment damage and/or mechanical failure.
  • a no-contact system eliminates the chance that an operator will forget to install and/or remove alignment plugs before and after each alignment procedure is performed, respectively. Accordingly, if the system does not use traditional alignment plugs, there is no chance that a collision between the alignment plugs and the take-off plate will occur.
  • a no-contact alignment system will also reduce the chance that an operator will improperly install the plenum/plate and take-off plate (e.g., not aligning them or not fastening to the specific torque).
  • real-time alignment monitoring may allow for earlier detection of an improper installation and/or mechanical failure from the improper installation.
  • a small angular misalignment may be exacerbated and may cause an interference between parts (e.g., between the receptacle and the cooling pin).
  • parts e.g., between the receptacle and the cooling pin.
  • FIG. 8 a rear view of a plenum 810 attached to a moving platen 841 , a one-degree rotation is sufficient to cause a cooling pin 844 located about 600 mm away from a mounting joint 860 to move, such as relative to the line labeled M, and cause interference between the pin 844 and the preform 852.
  • the rotation may cause the blow pin 844 to move about 10 mm.
  • FIGS. 2A and 2B illustrate a prior art injection molding machine 200 having a treatment device 239 (e.g., a cooling device) attached to a moving platen 241 , and a take-off plate 237 attached to a fixed platen 232. As shown in FIG.
  • the treatment device 239 is mounted on a hollow cylinder 240 on a side of the moveable platen 241 such that a cylinder/actuator 242 causes the treatment device 239 to rotate about a horizontal axis through 90 degrees.
  • the cylinder is pivotably mounted on an extension arm 250 that is fastened to the moveable platen 241.
  • the cylinder 240 is hollow to allow air to flow to the cooling pins.
  • the treatment device 239 has a plurality of cooling/transfer pins 244 (attached via a plenum and plate, such as cooling plate 243), and the take-off plate 237 has a plurality of preform carriers 238.
  • the take-off plate 237 moves linearly along arrow S in between the mold halves to extract the freshly molded preforms from the mold cores and onto a set of preform carriers 238.
  • the take-off plate 237 is then moved linearly to a position outboard of the mold halves.
  • the treatment device 239 i.e., the cooling plate
  • the take-off plate carriers 238 via the cooling/transfer pins 244.
  • a cooling fluid such as air
  • the pins 244 need not discharge cooling fluid into the preform.
  • one or more of the pins may be an extracting pin.
  • the preforms from the carriers 238 may be extracted by a vacuum means onto the cooling/transfer pins 244.
  • the treatment device 239 has rotated about a horizontal axis to drop the molded and cooled parts onto a conveyor (not shown).
  • alignment of the take-off plate and cooling plate is accomplished via alignment plugs 302 that engage with corresponding openings 304 on the take-off plate 337.
  • the alignment plugs 302 are first installed on one or more alignment pins 306 of a cooling plate (e.g., plate 343).
  • the alignment plugs 302 may be engaged with the openings 304 to align the cooling plate in a desired position with respect to the take-off plate.
  • the plates Once the plates have been aligned, they may be moved away from one another so that the plugs 302 may be removed from the pins 306.
  • human error in installing/removing the plugs may occur, which may have a detrimental effect on the post-mold conditioner and on the molded parts.
  • FIGS. 4A and 4B illustrate a post-mold conditioner 400 according to one aspect.
  • the post-mold conditioner 400 has a plenum 410 and plate 443 (e.g., a cooling plate), which are attached to a moveable platen (not shown), and a take-off plate 437 that is attached to the stationary platen (not shown).
  • the plenum 410 may include a blow motor to blow cooling fluid (e.g., air) to the cooling pins 444 and into the interior of the preforms carried by the carriers 438.
  • cooling fluid e.g., air
  • a parallel alignment sensor 412a, 412b is attached to a distal end of the alignment pin 406.
  • a corresponding receiver 414a, 414b is located on the take-off plate 437 and in facing relationship to the parallel alignment sensor 412a, 412b, respectively.
  • the parallel alignment sensor 412a, 412b is located on the alignment pin 406 and the corresponding receiver 414a, 414b is located on the take-off plate, in other embodiments, this orientation may be reversed. That is, the sensor may be positioned on the take-off plate with the corresponding receiver on the alignment pin.
  • the parallel alignment sensor or receiver may be attached directly to the cooling plate. In such embodiments, the alignment pin may not be used.
  • the conditioner 400 may have two parallel alignment sensors 412a, 412b, one on each of the two shown alignment pins 406. As will be appreciated, in other embodiments, the conditioner may have more than two sensors.
  • the sensors 412a, 412b and corresponding receivers 414a, 414b are positioned diagonally across from one another and on opposite corners of the cooling plate 443.
  • a first parallel alignment sensor 412a is located on the alignment pin 406 at a top, left corner 486a of an interior side 482 of the cooling plate 443
  • the second parallel alignment sensor 412b is located on the alignment pin 406 at a bottom right corner 486b of the interior side 482 of the cooling plate 443.
  • the corresponding first parallel alignment sensor receiver 414a is located on a corresponding top, right corner 488a of an interior side 487 of the take-off plate 437 and the corresponding second parallel alignment sensor receiver 414b is located on a corresponding bottom left corner 488b of the interior side 487 of the take-off plate 437.
  • FIG. 1C shows a front view of the conditioning device of FIG. 9, with the diagonally placed sensors on the cooling plate shown superimposed over the diagonally placed corresponding receivers on the take-off plate.
  • the parallel alignment sensors also may be located on the top right corner and bottom left corners of the cooling plate 443 in other embodiments.
  • the alignment of the cooling plate and take-off place can be properly measured and the cooling plate and the take-off plate also can be properly aligned. That is, by having one sensor located on the top corner of the cooling plate and a second sensor located on the bottom corner of the cooling plate, the alignment measuring system can determine when the bottom of the cooling plate is closer to the take-off plate than the top of the plate, for example. In a similar fashion, by having one sensor located on the left corner of the cooling plates and a second sensor located on the right corner of the cooling plate, the alignment measuring system can determine when one of the sides of the cooling plate is closer to the take-off plate than the other side.
  • the parallel alignment sensors are position sensors, such as distance- measuring sensors.
  • the position sensors may be lasers, inductive distance measurement sensors, or other suitable sensors.
  • the sensor and corresponding receiver measure the distance between one another, noted as Dl and D2 in FIGS. 4A and 9.
  • the distances Dl and D2 correspond to specific gaps between the alignment pins 406 and the tooling plate 437 when the mold is in a fully closed position (e.g., a distance from the alignment pins 406 to the interior side 487 of the take-off plate 437).
  • the axis labeled A2a e.g., the axis through the parallel alignment sensors 412a, 412b
  • the distances between the sensors and corresponding receivers will differ (e.g., Dl ⁇ D2) or be outside of the tolerance range.
  • the axis labeled A2a will not be parallel to the interior side of the takeoff plate.
  • alignment of the cooling plate and take-off plate is monitored by measuring and comparing the first and second distances.
  • FIGS. 5B and 6C illustrate embodiments in which there is parallel misalignment.
  • the distances between the post mold devices and, thus, the distance between the parallel alignment sensors and corresponding receivers differ or are outside of a tolerance range.
  • FIG. 5B which is a right-side end view of the post-mold device of FIG. 5A
  • an example of vertical-parallel misalignment is shown where tops 546, 548 of the plates 543, 537 are further away from one another than the bottoms 562, 564 of the plates.
  • the distance Dl between the first sensor and corresponding receiver 512a, 514a is greater than the distance D2 between the second sensor and corresponding receiver (not shown, because they are located behind the shown angular alignment sensor 518b and receiver 520b).
  • vertical -parallel misalignment also may occur if the second distance is greater than the first distance (e.g., when the bottoms of the plates are further away from one another than the tops of the plates).
  • the cooling plate rotates with respect to the longitudinal axis Ala, such misalignments may be corrected by rotating the plate 543, which may be performed automatically or manually.
  • FIG. 6C which is a bottom end view of FIG. 6A
  • an example of horizontal parallel misalignment is shown.
  • the left sides 670, 672 of the plates 643, 637 are closer together than the right sides 674, 676, and the distance D2 between the second parallel alignment sensor 612b and corresponding receiver 614b is smaller than the distance Dl between the first parallel alignment sensor and corresponding receiver (not shown, because they are located behind the angular alignment sensor 618b and receiver 620b).
  • horizontal-parallel misalignments may be corrected by manual adjustment such as manual mechanical adjustment. Referring again to FIG.
  • the conditioner also includes angular alignment sensors 418a, 418b.
  • the angular alignment sensors are photoelectric or laser sensors, although other suitable sensors also may be used. Similar to the parallel alignment sensors, while the angular alignment sensors 418a, 418b are shown on the alignment pins 406, with corresponding receivers 420a, 420b located on the take-off plate 437, this orientation may be reversed in other embodiments. Also, while two angular alignment sensors 418a, 418b are shown in this embodiment, the conditioner 400 may have more than two sensors 418a, 418b in other embodiments.
  • the angular alignment sensors 418a, 418b are located diagonally across from one another and on opposite corners of the cooling plate 443.
  • the diagonally placed angular alignment sensors may allow the angular alignment (e.g., the relative position) of the cooling plate and take-off plate to be measured and properly aligned.
  • the corresponding sensors may be located on opposite corners and diagonally across from one another on the take-off plate 437.
  • a first angular alignment sensor 418a is located on the alignment pin 406 at a top, right corner 480a of the interior side 482 of the cooling plate 443, and the second angular alignment sensor 418b is located on the alignment pin 406 at a bottom left corner 480b of the interior side 482 of the cooling plate 443.
  • the corresponding first angular alignment sensor receiver 420a is located on a corresponding top, left corner 484a of an interior side 487 of the take-off plate 437 and the corresponding second angular alignment sensor receiver 420b is located on a corresponding bottom right corner 484b of the interior side 487 of the take-off plate 437.
  • the first angular alignment sensor may be located on the alignment pin at the top left corner of the interior side of the cooling plate, with the second angular alignment sensor being located on the bottom right corner of the interior side.
  • both the angular alignment sensors and the parallel alignment sensors are located on the cooling plate in FIG. 1C (with corresponding receivers on the take-off plate), all the alignment sensors need not be located on the same post-mold device.
  • the cooling plate may include both parallel alignment sensors while the take-off plate includes both angular alignment sensors.
  • the cooling plate also may include one parallel alignment sensor and one angular alignment sensor, with the other parallel alignment sensor and angular alignment sensor located on the take-off plate.
  • FIG. 7A shows an example of angular misalignment.
  • the angular alignment sensors 718a, 718b monitor the position of the cooling plate 743 with respect to the position of the take-off plate 737. That is, an angular misalignment is identified when the angular alignment sensor 718a, 718b is not in an overlapping relationship with the corresponding receiver 720a, 720b. In some embodiments, when the angular alignment sensors and corresponding receivers are offset from one another, the receiver is unable to receive a signal from the sensor.
  • the plane of the cooling plate e.g., the plane defined by axis Ala and A3 a
  • the plane of the take-off plate e.g., the plane defined by axis Alb and A3b
  • the axes through the sensors A2a, A2b are offset from one another.
  • manual or automatic adjustment can be used to properly align the plates.
  • the axes of the pins 144 and preform carrier 238 are coaxial within a tolerance range. Accordingly, the pin 144 can engage with the preform 152 without damaging the preform or another tool component.
  • FIG. 7 A when the cooling plate and take-off plate are angularly misalignment, at least some, if not all, of the cooling pins 144 can interfere with the preform and/or carriers 238.
  • a method of monitoring the alignment of a post-mold conditioner involves measuring the gaps between the cooling plate and the take-off plate that is the distances Dl, D2 between the first and second parallel alignment sensors and their corresponding receiver, when the mold is closed. In some embodiments, this monitoring may be done in real time. If the gaps are not within a specified tolerance or threshold, (e.g., the gaps are different sizes and the difference between the gaps is larger than the threshold) and the plates have parallel misalignment, an alarm is reported and/or the machine cycle is interrupted. The method further involves verifying the angular alignment between the plates with the angular alignment sensors when the mold is opened.
  • data from the parallel alignment sensors and angular alignment sensors is first sent to a controller, which triggers the alarm when a misalignment is identified and/or which interrupts the machine cycle.
  • the post-mold conditioner is operatively coupled to a controller 990.
  • the controller 990 may receive feedback from the parallel alignment sensors 412a, 412b regarding the distance between the cooling plate 443 and the take-off plate 437.
  • the controller 990 also may receive feedback from the angular alignment sensors 418a, 418b regarding the angular alignment of the cooling plate 443 and the take-off plate 437 (e.g., the relative position between the cooling plate 443 and the take-off plate 437).
  • the controller 990 processes the information received from the sensors and alerts the user when a misalignment and/or machine failure is identified.
  • the alarm may be a visual alarm (e.g., a light or a notification on a control panel), an audible alarm, another suitable alarm or any combination thereof.
  • the controller 990 also may stop a mold cycle upon identification of the misalignment and/or machine failure.
  • alignment system on the takeoff plate and cooling plate
  • parallel alignment sensors and angular alignment sensors may also be used on corresponding faces of the mold halves to monitor alignment.

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  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Mechanical Engineering (AREA)
  • Moulds For Moulding Plastics Or The Like (AREA)
PCT/CA2016/050703 2015-08-07 2016-06-16 Post-mold alignment and alignment monitoring Ceased WO2017024381A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201680040907.8A CN107848177B (zh) 2015-08-07 2016-06-16 模制后对准和对准监测

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201562202430P 2015-08-07 2015-08-07
US62/202,430 2015-08-07

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WO (1) WO2017024381A1 (zh)

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WO2019075554A1 (en) * 2017-10-19 2019-04-25 Husky Injection Molding Systems Ltd. INJECTION MOLDING APPARATUS AND METHOD FOR ALIGNMENT FAULT DETECTION IN THE INJECTION MOLDING APPARATUS
US11225007B2 (en) 2017-10-23 2022-01-18 Engel Austria Gmbh Method for moving a movable platen
US11511501B2 (en) * 2019-10-07 2022-11-29 GM Global Technology Operations LLC Mold and method for molding a reinforced preform

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CN114454420B (zh) * 2022-02-28 2023-09-08 广东迈亚塑料有限公司 一种汽车零部件用注塑模具

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US6171092B1 (en) * 1998-10-02 2001-01-09 Husky Injection Molding Systems Ltd. Platen sensing and alignment apparatus
US7534102B2 (en) * 2004-11-19 2009-05-19 Inglass S.P.A. Apparatus and a method for injection-compression molding of articles made of plastic material with two components

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019075554A1 (en) * 2017-10-19 2019-04-25 Husky Injection Molding Systems Ltd. INJECTION MOLDING APPARATUS AND METHOD FOR ALIGNMENT FAULT DETECTION IN THE INJECTION MOLDING APPARATUS
US11642824B2 (en) 2017-10-19 2023-05-09 Husky Injection Molding Systems Ltd. Injection molding apparatus and method of detecting misalignment in the injection molding apparatus
US11225007B2 (en) 2017-10-23 2022-01-18 Engel Austria Gmbh Method for moving a movable platen
US12350873B2 (en) 2017-10-23 2025-07-08 Engel Austria Gmbh Method for moving a movable platen
US11511501B2 (en) * 2019-10-07 2022-11-29 GM Global Technology Operations LLC Mold and method for molding a reinforced preform

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CN107848177B (zh) 2019-09-10
CN107848177A (zh) 2018-03-27

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