US20080110382A1 - Twin row planter with adjustable seed metering - Google Patents
Twin row planter with adjustable seed metering Download PDFInfo
- Publication number
- US20080110382A1 US20080110382A1 US11/558,551 US55855106A US2008110382A1 US 20080110382 A1 US20080110382 A1 US 20080110382A1 US 55855106 A US55855106 A US 55855106A US 2008110382 A1 US2008110382 A1 US 2008110382A1
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- US
- United States
- Prior art keywords
- seed
- planter
- metering
- metering wheel
- twin row
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- 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.)
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Links
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Images
Classifications
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01C—PLANTING; SOWING; FERTILISING
- A01C7/00—Sowing
- A01C7/08—Broadcast seeders; Seeders depositing seeds in rows
- A01C7/10—Devices for adjusting the seed-box ; Regulation of machines for depositing quantities at intervals
- A01C7/102—Regulating or controlling the seed rate
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01C—PLANTING; SOWING; FERTILISING
- A01C7/00—Sowing
- A01C7/04—Single-grain seeders with or without suction devices
- A01C7/042—Single-grain seeders with or without suction devices using pneumatic means
- A01C7/044—Pneumatic seed wheels
- A01C7/046—Pneumatic seed wheels with perforated seeding discs
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01C—PLANTING; SOWING; FERTILISING
- A01C7/00—Sowing
- A01C7/04—Single-grain seeders with or without suction devices
- A01C7/042—Single-grain seeders with or without suction devices using pneumatic means
- A01C7/044—Pneumatic seed wheels
- A01C7/0443—Seed singulators
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S111/00—Planting
- Y10S111/90—Methods of planting seeds and miscellaneous compositions
Definitions
- the present invention relates generally to agricultural planting equipment. More specifically, an embodiment of the present invention concerns a twin-row planter including relatively adjustable seed metering assemblies of each planting unit pair for permitting selective variance of the seed stagger in the adjacent furrows.
- Conventional row-crop planters include a plurality of planter units for planting seeds along spaced-apart rows. Some of these conventional planters include a single planter unit per row that plants seeds along a single furrow. Other planters known in the art include two planters per row and are referred to as twin row seed planters. Twin row planters enable the placement of seed along two closely-spaced furrows within the corresponding row. In particular, twin row planters can discharge seeds into an alternating pattern between adjacent furrows within the row, i.e., the two planters alternately position seed. In this manner, twin row planters enable a greater number of seeds to be planted along the row than single row planters while maintaining the necessary spacing between individual seeds.
- Twin row planters are problematic and suffer from various undesirable limitations. It is highly desirable to have the seeds in the closely-spaced furrows to be relatively positioned in a desired pattern. Typically, this pattern constitutes equidistant spacing (i.e., uniform staggering) of the seeds between the furrows. However, the problem is that if the speed of the drive mechanism relative to the ground speed is changed, the stagger between adjacent furrows changes. In some instances, seeds from the two furrows could be placed immediately adjacent one another. With prior art twin row planters, users have attempted to reconfigure the seed stagger between furrows by adjusting the transmission that interconnected the planter units.
- the present invention provides a twin row seed planter that does not suffer from the problems and limitations of the prior art planters set forth above.
- a first aspect of the present invention concerns a twin row seed planter broadly including a pair of planting units and a drive mechanism.
- the pair of planting units is operable to seed a pair of closely-spaced adjacent furrows forming a single harvesting row.
- a first one of the planting units corresponds with a first one of the furrows and a second one of the planting units corresponds with a second one of the furrows.
- the first planting unit includes a first rotatable metering wheel having a plurality of circumferentially spaced seed-receiving first cells.
- the second planting unit includes a second rotatable metering wheel having a plurality of circumferentially spaced seed-receiving second cells.
- the second metering wheel is positioned relative to the first metering wheel to present an angular relationship between the first and second cells.
- the drive mechanism is operable to supply power to the planting units so as to cause rotation of the wheels.
- the second metering wheel is drivingly disconnectable from the drive mechanism and repositionable relative to the first metering wheel to adjust the angular relationship between the first and second cells so as to vary spacing of the seed in the second furrow relative to seed in the first furrow.
- a second aspect of the present invention concerns a method of adjusting the seed stagger between a pair of closely-spaced adjacent furrows planted by respective planting units of a twin row planter, wherein each of the planting units includes a rotatable seed metering wheel.
- the seed stagger adjustment method broadly includes the steps of determining an initial angular relationship between the seed metering wheels of the planting units, comparing the initial angular relationship with an adjusted angular relationship corresponding to a desired seed stagger between the furrows, and relatively shifting the seed metering wheels from the initial angular relationship to the adjusted angular relationship.
- FIG. 1 is a fragmentary perspective view of a twin row planter constructed in accordance with a preferred embodiment of the present invention
- FIG. 2 is a top view of the twin row planter shown in FIG. 1 ;
- FIG. 3 is a left side view of the twin row planter shown in FIGS. 1 and 2 ;
- FIG. 4 is a right side view of the twin row planter shown in FIGS. 1-3 ;
- FIG. 5 is a fragmentary perspective view of the twin row planter shown in FIGS. 1-4 , showing a drive mechanism and seed metering assembly of the planter;
- FIG. 6 is an exploded perspective view of the twin row planter shown in FIGS. 1-5 , showing an adjustable sprocket assembly of the planter exploded from the corresponding seed metering assembly;
- FIG. 7 is an enlarged exploded view of the twin row planter shown in FIGS. 1-6 , showing the adjustable sprocket assembly partly exploded from the seed metering assembly;
- FIG. 8 is a partly exploded view of the seed metering assembly shown in FIGS. 1-7 , showing a metering wheel, seed singulator, and deflector block exploded away from a remainder of the seed metering assembly;
- FIG. 9 is a fragmentary exploded view of the seed metering assembly shown in FIGS. 1-8 , showing the metering wheel mounted on a rotatable shaft of the metering assembly and the adjustable sprocket assembly exploded away from the shaft;
- FIG. 10 is a schematic side view of the metering wheel shown in FIGS. 1-9 , showing the configuration of seed plate holes and rotational offset locations for each of a plurality of angular offsets;
- FIG. 11 is an enlarged fragmentary left side view of the twin row planter shown in FIGS. 1-7 , showing an indexing wrench installed onto the rotatable shaft and indicating a relative angular offset between a pair of seed metering assemblies that cooperatively plant seeds along a harvesting row;
- FIG. 12 is an enlarged fragmentary left side view of the seed metering assembly shown in FIGS. 1-7 and 11 , showing a timing disk and timing scale of the adjustable sprocket assembly positioned with the angular offset of the seed metering assemblies being at a value of eighteen (18);
- FIG. 13 is an enlarged fragmentary left side view of the seed metering assembly shown in FIGS. 1-7 , 11 , and 12 , showing the timing disk and timing scale shifted in a counterclockwise direction for changing the angular offset of the seed metering assemblies to a value of twelve (12);
- FIG. 14 is an enlarged fragmentary left side view of the seed metering assembly shown in FIGS. 1-7 and 11 - 13 , showing the metering wheel and rotatable shaft shifted in a counterclockwise direction to the angular offset value of twelve (12).
- a twin row agricultural seed planter 10 operable to be pulled by a tractor (not shown), is depicted and is particularly suited for row-crop planting of numerous plant varieties (e.g., soybeans, peanuts, cotton, corn, cucumbers, melons, onions, pumpkins, sorghum, and sunflowers).
- numerous plant varieties e.g., soybeans, peanuts, cotton, corn, cucumbers, melons, onions, pumpkins, sorghum, and sunflowers.
- the illustrated twin row planter 10 provides an optimal spacing between adjacent seeds by planting seeds into a pair of adjacent furrows within a corresponding harvesting row.
- the twin row planter 10 broadly includes a chassis 12 , a drive mechanism 14 , and fixed and adjustable planter units 16 , 18 .
- the planter units 16 , 18 cooperatively plant adjacent furrows within the harvesting row and thereby operate as a synchronized twin planter assembly. While only one twin planter assembly is shown in the illustrated seed planter 10 , those of ordinary skill in the art will appreciate that as many as eight or twelve of the twin planter assemblies are commonly used in one seed planter 10 .
- the chassis 12 and drive mechanism 14 are conventional components such as those found on the MONOSEM planter available from MONOSEM, Inc. of Lenexa, Kans.
- the chassis 12 broadly includes, among other things, a tool bar 20 and offset planter attachment assemblies 22 , 24 .
- the tool bar 20 includes a tubular beam 26 that extends transversely relative to an axial direction of the twin row planter 10 and supports the assemblies 22 , 24 .
- the assemblies 22 , 24 each preferably include a pivotal linkage 28 .
- the pivotal linkage 28 includes links 30 , a tool bar bracket 32 , and U-bolt fasteners 34 for securing the bracket 32 .
- the links 30 are pivotally mounted on the bracket 32 and, as will be discussed, the links 30 are pivotally attached to the corresponding planter unit 16 , 18 .
- the twin row planter 10 preferably includes a plurality of attachment assembly pairs spaced along the tool bar 20 for receiving a plurality of twin planter assemblies.
- Assembly 24 also includes an offset bracket assembly 36 for spacing the planter units 16 , 18 axially from one another.
- the offset bracket assembly 36 includes an elongated body 38 and U-bolt fasteners 40 for attaching the body 38 to the tool bar 20 so that the body 38 is cantilevered therefrom.
- the pivotal linkage 28 of assembly 24 is attached to a rearwardly-spaced end of the offset bracket assembly 36 .
- the linkage 28 of assembly 22 is attached directly to the tool bar 20 by bracket 32 and U-bolt fasteners 34 .
- the links 30 are interconnected with respective brackets 32 at pinned joints and extend rearwardly therefrom. In this manner, each of the links 30 preferably pivot relative to the tool bar 20 about a corresponding horizontal axis. While each linkage 28 preferably includes a pair of links 30 spaced vertically from one another, it is within the ambit of the present invention where an alternative linkage 28 is used to permit relative vertical movement between the planter units 16 , 18 and tool bar 20 .
- the chassis 12 further includes a top tool bar (not shown) that provides a manifold for supplying vacuum to the planter units 16 , 18 .
- Vacuum is supplied to the planter units 16 , 18 by a vacuum source (not shown), such as a pump, via corresponding vacuum hoses (not shown).
- the drive mechanism 14 powers each of the planter units 16 , 18 .
- the drive mechanism 14 preferably includes a driving connection to ground wheels (not shown) of the planter 10 that serves as the power source for the twin row planter 10 .
- the planter 10 includes an alternative power source.
- the twin row planter 10 could include a hydraulic motor or a variable speed electric motor for powering the planter 10 .
- Such wheels would be rotatably attached to the chassis 12 and would spin in response to contact with the ground. Further details of a preferred planter with drive wheels are described in U.S. Pat. No. 6,520,100, issued Feb. 18, 2003, entitled TWIN ROW PLANTER, which is hereby incorporated by reference herein.
- the drive mechanism 14 also preferably includes a drive shaft 42 , drive sprockets 44 , driven shaft 46 , driven sprockets 48 , fixed idlers 50 , adjustable idlers 52 , and drive chains 54 .
- the shafts 42 , 46 are rotatably mounted on the chassis 12 .
- the drive shaft 42 is positioned adjacent the tool bar 20 and extends in front of both planter units 16 , 18 .
- the driven shaft 46 is spaced axially behind the drive shaft 42 and extends primarily in front of planter unit 18 .
- the drive sprockets 44 are mounted on the drive shaft 42
- driven sprockets 48 are mounted on driven shaft 46 .
- One chain 54 drivingly interconnects planter unit 16 and the respective adjacent drive sprocket 44 .
- Two additional chains 54 drivingly interconnect the planter unit 18 , the driven sprockets 48 , and the respective adjacent drive sprocket 44 .
- the illustrated sprockets 44 , 48 and chains 54 are preferred for transmitting power through the drive mechanism 14 , the principles of the present invention are applicable where other power transmitting elements are used, such as gear drives or belt-and-pulley drives.
- the illustrated drive mechanism 14 preferably drives the planter units 16 , 18 synchronously (i.e., at the same time).
- the planter units 16 , 18 broadly include a planter frame 56 , a depth gauge wheel assembly 58 , a furrow opener 60 , a furrow closer 62 , a seed hopper 64 , a seed tube (not shown), and seed metering assemblies 66 , 68 . Except for the seed metering assemblies 66 , 68 , all of the components of planter units 16 , 18 are conventional such as those found on the MONOSEM planter available from MONOSEM, Inc.
- the planter unit 18 is preferably axially spaced behind the planter unit 16 . More preferably, the illustrated planter unit 18 is axially spaced behind planter unit 16 by 17.75 inches.
- the planter units 16 , 18 are positioned with an alternative axial spacing, such as 9 or 25 inches. It is also consistent with the scope of the present invention where the planter unit 18 is spaced ahead of planter unit 16 .
- the planter frame 56 includes a frame body 72 and a linkage bracket 74 fixed to the body 72 .
- the planter frame 56 further presents an opening for receiving a corresponding one of the seed metering assemblies 66 , 68 .
- the frame body 72 is preferably a rigid structure with several structural components welded or fastened together.
- the planter units 16 , 18 are pivotally attached to linkage 28 .
- the linkage bracket 74 is attached to the links 30 at pinned joints so that the planter units 16 , 18 are shiftable relative to the chassis 12 in a substantially upright direction.
- the linkage 28 operates as a four-bar linkage to restrict rotational shifting of the planter units 16 , 18 while permitting upright shifting thereof.
- the gauge wheel assembly 58 includes gauge wheels 76 rotatably mounted on the frame body 72 .
- the gauge wheel assembly 58 is operable to roll on top of a ground surface and thereby maintain the height of the planter unit 16 , 18 relative to the ground surface.
- the furrow opener 60 includes a disc 78 rotatably mounted to the frame body 72 for opening the corresponding furrow.
- the furrow closer 62 is spaced axially behind the furrow opener 60 and includes press wheels 80 pivotally attached to the frame body 72 by arms 82 .
- the seed hopper 64 comprises a container for holding seed (not shown) and is preferably mounted to the frame 56 above the respective metering assembly 66 , 68 so that seed is fed by gravity into the metering assembly 66 , 68 . While each planter unit 16 , 18 preferably includes one of the hoppers 64 , it is also within the ambit of the present invention where a plurality of planter units 16 , 18 use a common hopper.
- the seed metering assemblies 66 , 68 include a housing 84 , a rotatable shaft 86 rotatably mounted in the housing 84 , and a metering wheel 88 .
- the seed metering assembly 66 also includes a fixed sprocket assembly 90 (see FIG. 3 ) for connecting with the drive mechanism 14 .
- the seed metering assembly 68 preferably includes an adjustable sprocket assembly 92 for connecting with the drive mechanism and an angular adjustment indicator 94 (see FIG. 7 ).
- the principles of the present invention are also applicable where seed metering assembly 66 , or both seed metering assemblies 66 , 68 include the adjustable sprocket assembly 92 .
- the housing 84 is operable to substantially enclose the metering wheel 88 and includes a vacuum section 96 , a cover section 98 , and an insert assembly 100 .
- the vacuum section 96 presents an air vent 102 along an outer side thereof and an inner cavity 104 .
- the vacuum section 96 also includes fixed and rotatable dowel pins 106 a,b and threaded studs 108 (see FIG. 8 ).
- the rotatable dowel pin 106 b includes an eccentric end, the use of which will be described.
- the insert assembly 100 includes a plastic annular insert 110 and a circular cap 112 .
- the annular insert 110 presents a circular opening through which the shaft 86 is received and an annular slot 116 that extends around the opening.
- the cap 112 is partly received within the circular opening and is secured to the vacuum section 96 by fasteners.
- the insert assembly 100 is received within the inner cavity 104 and is held therein by the cap 112 .
- the vacuum section 96 and insert assembly 100 cooperatively define a vacuum chamber 118 , with the slot 116 and air vent 102 preferably forming two openings that fluidly communicate with the chamber 118 .
- the annular insert 110 also serves as a gasket or wear surface for receiving the metering wheel 88 .
- the housing 84 further includes a seed singulator 120 and a seed deflector block 122 .
- the seed singulator 120 is substantially unitary and includes a serrated edge 124 .
- the seed singulator 120 is mounted onto dowels pins 106 a,b adjacent to the metering wheel 88 . As the dowel pin 106 b is rotated, the eccentric end thereof shifts the singulator 120 relative to the vacuum section 96 to accommodate different sizes of seed, as will be discussed.
- the deflector block 122 is unitary and is shiftably mounted adjacent the metering wheel 88 .
- the deflector block 122 presents a sloped edge 126 for deflecting seeds into the seed boot.
- the deflector block 122 is mounted on an inside surface of the cover section 98 .
- the housing 84 also includes a vacuum control 128 for adjusting the vacuum level present in the seed metering assembly 66 , 68 .
- the vacuum control 128 includes a control lever 130 for controlling the vacuum level by selectively opening a vent (not shown).
- the vacuum control 128 also includes a vacuum adjustment scale 132 presented on an outer surface of the vacuum section 96 for indicating a setting of the control lever 130 .
- the control lever 130 also is interconnected with and is thereby configured to rotate the dowel pin 106 b .
- the control lever 130 is configured to shift the singulator 120 and adjust the vent at the same time.
- the rotatable shaft 86 includes a shaft body 134 presenting inner and outer shaft ends 136 , 138 .
- the shaft body 134 also comprises an inner shaft portion 135 a and an outer sleeve portion 135 b that are attached to one another with a roll pin (not shown).
- the outer sleeve portion 135 b of the shaft body 134 presents an annular groove 140 and a hex section 142 spaced between the ends 136 , 138 .
- the rotatable shaft 86 also includes a spring pin 144 received within a corresponding through-hole and a cotter pin 146 received in the groove 140 .
- the rotatable shaft 86 is rotatably mounted in the vacuum section 96 with the ends 136 , 138 extending oppositely therefrom.
- the cover section 98 includes a unitary wall 148 that presents a seed trap opening (not shown), a view opening 152 , and a seed supply opening 154 .
- the cover section 98 also includes a trap door 156 pivotally attached to the wall 148 to selectively cover the seed trap opening.
- the cover section 98 further includes a control window 158 pivotally attached to the wall 148 .
- the control window 158 is biased by a spring into a position covering the view opening 152 .
- the control window 158 includes a plurality of openings that permit air to pass into the metering assembly 66 , 68 while the window 158 covers the view opening 152 .
- the control window 158 is selectively openable to view inside the metering assembly 66 , 68 .
- the cover section 98 is attachable to the vacuum section 96 by positioning the cover section 98 adjacent thereto so that the threaded studs 108 pass through corresponding holes in the cover section 98 .
- Wing nuts 160 are threaded onto the studs 108 to secure the sections 96 , 98 to one another and define a seed chamber 162 between the cover section 98 and insert assembly 100 .
- the sections 96 , 98 cooperatively present a lowermost seed opening 164 that permits seed to be discharged from the seed chamber 162 into the seed boot.
- the metering wheel 88 includes a stainless steel seed plate 166 and a circular agitator 167 attached to one another and mounted on the rotatable shaft 86 adjacent the inner end 136 thereof.
- the seed plate 166 is preferably circular and includes eighteen (18) holes 168 spaced uniformly along the outermost circumference of the seed plate 166 (see FIG. 10 ) and serve as seed-receiving cells. Each pair of adjacent holes 168 are spaced from one another at a cell angle of twenty degrees. However, the principles of the present invention are applicable where the seed plate 166 includes an alternative number of cells, such as 12, 24, or 36.
- the illustrated metering assemblies 66 , 68 preferably include the illustrated metering wheel 88 , the it is also within the scope of the present invention where the metering assemblies 66 , 68 utilize an alternative metering mechanism, such as a metering wheel with a cup-type seed-securing cell.
- the circular agitator 167 is preferably constructed of brass and includes blades 169 that displace seed within the seed chamber 162 and lugs 170 positioned on an opposite side from the blades 169 on the agitator 167 .
- the agitator 167 is fixed to the seed plate 166 by a plurality of fasteners so that the metering wheel 88 operates as a unitary structure.
- the metering wheels 88 all preferably include an identical configuration of cells so that seeds are uniformly spaced among furrows. However, the principles of the present invention are also applicable where the metering wheels 88 have different configurations such that planter units 16 , 18 discharge seed at different seed spacings along a pair of adjacent furrows.
- the metering wheel 88 is mounted onto shaft 86 adjacent the end 136 thereof, with the spring pin 144 being spaced adjacent the metering wheel 88 and the lugs 170 .
- the spring pin 144 engages the lugs 170 and causes the metering wheel 88 to also rotate in the forward direction with the shaft 86 .
- the metering wheel 88 is received by the annular insert 110 in a sliding relationship, with the insert 110 serving as a gasket and providing a wear surface.
- the metering wheel 88 operates by rotating along a forward direction shown by the arrow.
- the singulator 120 is positioned laterally adjacent and slidably engages the metering wheel 88 , with a fine spacing therebetween, so that the serrated edge 124 is positioned adjacent the holes 168 . While the singulator 120 preferably contacts the metering wheel 88 , it is also within the ambit of the present invention where the singulator 120 is entirely spaced from the metering wheel 88 .
- the singulator 120 is configured to displace seed from the holes 168 so that each hole 168 secures a single seed. As previously discussed, the singulator 120 is configured to be shifted by the control lever 130 . More particularly, the singulator 120 is configured to be shifted relative to the cells of the seed plate 166 to accommodate different sizes and shapes of seed while ensuring that only one seed becomes secured within the corresponding cell.
- the deflector block 122 is also spaced adjacent the metering wheel 88 .
- the sloped edge 126 extends radially from within the radial position of the holes 168 on the metering wheel 88 to a position outside of the radial position of the holes 168 . In this manner, the sloped edge 126 serves to deflect seed from the corresponding hole 168 and direct the seed into the seed boot (not shown).
- the angular adjustment indicator 94 presents an angular scale 172 along one side thereof for indicating angular offset between the seed metering assemblies 66 , 68 , as will be discussed in greater detail.
- the illustrated angular scale 172 preferably includes a range of indicator marks from zero (0) degrees angular offset up to thirty (30) degrees angular offset.
- the angular scale 172 also preferably includes angular indicator marks at two degree increments. However, it is also consistent with the principles of the present invention where the range of indicator marks or their relative spacing are either lesser or greater than the illustrated embodiment.
- the illustrated embodiment preferably utilizes indicator marks ranging from “0” to “18”.
- the seed metering assemblies 66 , 68 are mounted within the corresponding frame 56 .
- vacuum hoses (not shown) fluidly interconnect the vacuum source and also the air vent 102 on the housing 84 so that the vacuum chamber 118 is operable to be evacuated.
- the seed chamber 162 is configured to receive seed from the hopper 64 .
- the holes 168 function as a seed-selecting location or cell as vacuum in the vacuum chamber 118 draws air through the holes 168 from the seed chamber 162 . In particular, this vacuum-driven selection of seed occurs only along the circumferential length of the annular slot 116 .
- the adjustable sprocket assembly 92 serves as a connector for adjustably connecting the drive mechanism 14 to the rotatable shaft 86 so that the seed plates 166 of the twin planter assembly are shiftable relative to one another.
- the adjustable sprocket assembly 92 includes a sprocket plate assembly 174 , a spacer 175 , and a timing plate assembly 176 , with the plate assemblies 174 , 176 being selectively and adjustably attached to one another.
- the sprocket plate assembly 174 includes a sprocket 178 and a plate 180 that are mounted onto and integrally formed with a cylindrical shaft 182 .
- the illustrated sprocket 178 preferably includes eighteen (18) teeth 183 .
- the adjustable sprocket assembly 92 further includes a projection 184 that extends from the plate 180 adjacent the outer circumference of the plate 180 and extends parallel to the shaft axis.
- the timing plate assembly 176 includes a timing disk 186 , a cylindrical mount 188 , and a timing scale 190 .
- the cylindrical mount 188 includes a through-hole 192 that extends transversely to the shaft axis.
- the timing disk 186 presents twenty (20) indexing holes 194 that are uniformly spaced along the outermost plate circumference, with an eighteen-degree indexing angle between each pair of adjacent holes 194 .
- the principles of the present invention are equally applicable where the plate 186 includes an alternative number of indexing holes 194 .
- the number of indexing holes 194 is preferably greater than the number of holes 168 .
- the timing disk 186 could alternatively include a number of indexing holes 194 less than the number of holes 168 , although such an arrangement is not shown.
- the timing scale 190 is annular and is preferably constructed of a thin magnetic material with a printable overlay adhered thereto.
- the timing scale 190 includes a plurality of numbered divisions 195 spaced along an outer circumference thereof (see FIGS. 12-14 ).
- the divisions 195 are preferably angularly spaced uniformly and at an angle from one another identical to the indexing angle of holes 194 discussed above.
- the divisions 195 are configured to identify the indexing holes 194 and to thereby permit a predetermined adjustment of the timing plate assembly 176 relative to the sprocket plate assembly 174 .
- divisions 195 are preferably numbered from “0” to “38” in a counterclockwise direction, it is also within the scope of the present invention to number the divisions 195 in an alternative manner. Furthermore, it is also consistent with the principles of the present invention where the timing scale 190 identifies only some of the indexing holes 194 , e.g., with divisions 195 numbered from “0” to “18.” As will be discussed, the illustrated embodiment only utilizes divisions 195 from “0” to “18.”
- the timing scale 190 is preferably magnetic so as to be selectively magnetically secured onto the timing disk 186 .
- the principles of the present invention are applicable where the timing scale 190 is alternatively removably secured on the timing disk 186 .
- the timing scale 190 could be secured to the timing disk 186 with conventional removable fasteners or the timing scale 190 could take a different form, such as a dial indicator.
- the timing plate assembly 176 is received onto the plate 180 by aligning the projection 184 with a selected one of the holes 194 while positioning the shaft 86 within the cylindrical mount 188 and the shaft 182 .
- the timing plate assembly 176 and the sprocket plate assembly 174 cooperatively provide a clutch that interconnects the shaft 86 and the drive mechanism 14 .
- the timing plate assembly 176 and sprocket plate assembly 174 can be aligned so that any one of the holes 194 receives the projection 184 .
- the adjustable sprocket assembly 92 is received onto the shaft 86 by initially mounting the sprocket plate assembly 174 onto the shaft 86 with the plate 180 being outboard of the sprocket 178 .
- the sprocket plate assembly 174 is rotatably mounted onto the shaft 86 and is configured so that the drive chain 54 can be entrained onto the sprocket 178 .
- the sprocket assemblies 90 , 92 are drivingly interconnected with the respective drive chains 54 .
- the drive chains 54 rotate the sprocket assemblies 90 , 92 .
- the timing plate assembly 176 is also configured to mount on the shaft 86 , with one of the holes 194 receiving the projection 184 as discussed above. In this manner, the timing plate assembly 176 and sprocket plate assembly 176 rotate together on the shaft 86 . As the through-hole 192 is aligned with a through-hole 196 in the shaft 86 , a linch pin 198 can be inserted into both through-holes 192 , 196 to rotatably lock the shaft 86 to the adjustable sprocket assembly 92 . Consequently, the adjustable sprocket assembly 92 becomes fixed to the metering wheel 88 of the seed metering assembly 68 .
- the linch pin 198 can be removed to permit relative rotational movement between the shaft 86 and adjustable sprocket assembly 92 as well as removal of the adjustable sprocket assembly 92 entirely from the shaft 86 .
- the drive chains 54 are configured to rotate the sprocket assemblies 90 , 92 and, in turn, the metering wheels 88 within the seed metering assemblies 66 , 68 .
- the number and spacing of indexing holes 194 is determined based on the hole configuration for the seed plate 166 and the desired angular offset increment. As discussed, the 18 holes 168 in seed plates 166 are spaced at twenty-degree intervals from one another. The illustrated angular offset increment is two degrees as illustrated by the timing scale 190 and angular scale 172 . In the preferred embodiment, the uniform spacing of holes 168 permits the plates 166 to be offset by rotating one of the seed plates 166 through a larger angle ⁇ n than the corresponding angular offset.
- the seed plate 166 is rotated through an angle nine times greater than the desired angular offset. While the seed plates 166 are preferably adjustable at two degree increments relative to one another, it is within the ambit of the present invention where the seed plates 166 are adjustable at other angular offset increments.
- the adjustable sprocket assembly 92 and the seed plates 166 cooperatively enable the mechanism discussed above for offsetting the seed metering assemblies 66 , 68 .
- the indexing holes 194 are spaced at eighteen (18) degree increments, resulting in twenty (20) indexing holes 194 . While the preferred configuration of the timing plate assembly 176 and the seed plates results in more indexing holes 194 than holes 168 , the principles of the present invention are applicable where there are fewer indexing holes 194 than holes 168 .
- the timing disk 186 includes twenty holes 194 corresponding to various offset angles ⁇ n of the seed plates 166 .
- a scale ratio can be defined between the angle of rotation for the timing disk 186 and for the seed plate 166 .
- the scale ratio is 9:1, but it is also within the ambit of the present invention where the scale ratio ranges between about 5:1 and 20:1.
- the scale ratio enables a suitable spacing of indexing holes 194 on the timing disk 186 for indexing the seed plate 166 at fine angular offsets.
- timing disk 186 included holes spaced at two-degree increments for positioning the seed plate 166 at corresponding two-degree increments, such a timing disk would need to be substantially larger than in the illustrated embodiment for the indexing holes to fit on the plate, or a more complicated indexing mechanism would be required.
- the seed planter 10 preferably includes the illustrated adjustable sprocket assembly 92 for indexing the seed plate 166 , it is also within the ambit of the present invention where other mechanisms are used to introduce a desired offset between metering wheels 88 of the planter 10 without adjusting the drive mechanism 14 .
- the synchronized twin planter assembly is adjustable to plant seeds within a range of seed spacing along a given furrow, preferably between about 6 inches and 20 inches. However, the principles of the present invention are applicable where the seed spacing along a furrow is less than 6 inches or greater than 20 inches.
- the illustrated sprocket 178 preferably includes 18 teeth 183 . More preferably, the sprocket 178 includes the same number of teeth 183 as holes 168 in both seed plates 166 .
- the seed plate 166 will shift through an angle equivalent to the cell angle or a multiple thereof, depending on the number of teeth 183 that were skipped. In other words, the uniformly-spaced holes 168 of one seed plate 166 will remain in the same offset angle relative to the other seed plate 166 should the chain 54 skip over one or more teeth 183 .
- the illustrated sprocket 178 preferably includes eighteen (18) teeth 183
- the sprocket 178 includes an alternative number of teeth 183 .
- the sprocket 178 could correspondingly include twelve (12) teeth 183 so that inadvertent jumping of the chain 54 would not impact the offset angle of the seed plates 166 .
- the illustrated adjustable sprocket assembly 92 is required for adjusting the relative offset angle of the seed plates 166 . In other words, the chain 54 can no longer be “jumped” relative to the sprocket 178 to adjust the offset angle.
- Synchronization of the twin planter assembly is initiated by adjusting the fixed planter unit 16 .
- the metering wheel 88 is rotated until one of the holes 168 is aligned with an outermost tip 202 of the seed singulator 120 (i.e, the metering wheel 88 is positioned into a zero degree reference position, as shown in FIG. 8 ).
- Rotation of the metering wheel 88 is performed by applying a drive adjustment wrench (not shown) to the drive mechanism 14 at a hex end 204 of the drive shaft 42 and rotating the drive shaft 42 in the direction indicated by the arrow shown in FIG. 4 .
- An indexing wrench 206 is positioned on the hex section 142 so that an indicator mark 208 on the wrench 206 points to the angular offset between the metering wheels 88 , as indicated on the angular scale 172 . If the indicator mark 208 does not point to the angular scale 172 , the drive adjustment wrench is rotated until the tip 202 is aligned with the next hole 168 where the mark 208 points to a location on the angular scale 172 . With the metering wheel 88 of the fixed planter unit 16 being positioned into the zero degree reference position, the other metering wheel 88 can be adjusted to the desired angular offset.
- the angular offset of the seed plates 166 is adjusted by initially determining the pre-existing offset.
- An indexing wrench 206 is mounted to the hex section 142 as shown in FIG. 11 so that an indicator mark 208 on the wrench 206 points to the angular offset between the metering wheels 88 , as indicated on the angular scale 172 (i.e., eighteen (18) degrees in the illustrated embodiment).
- the timing scale 190 is then indexed to that setting by positioning the scale 190 on the timing disk 186 so that the number indicated on the angular scale 172 (“18” in the illustrated embodiment) is aligned adjacent the projection 184 (see FIG. 12 ).
- the desired angular offset is determined from a reference chart shown in Table 1 below.
- the illustrated reference chart calculates the desired angular offset based on the number of seed-receiving cells N in each seed plate 166 , the seed spacing D in each furrow (identified as “Average Seed Distance”), and the axial offset F between seed metering assemblies 66 , 68 of the seed planter 10 (identified as “Left Twin Row Offset”).
- the desired angular offset ranges in value in Table 1 from zero (0) to eighteen (18).
- the scales could be alternatively configured to identify only the necessary indicator marks (i.e., with the illustrated embodiment, the scales would only have marks ranging from zero (0) to eighteen (18)).
- Table 1 The tabular values illustrated in Table 1 are calculated initially by determining the desired seed spacing D (inches) within each furrow, based on the distance W (inches) from center to center of adjacent harvesting rows and the number S of seeds planted per acre:
- a required relative angular position G (degrees) between seed plates 166 can be determined as:
- the required relative angular position G is an ideal relative angular position of the seed plates 166 that is calculated based upon the above referenced parameters.
- the timing disk 186 and timing scale 190 are indexed to that setting by being rotated together (in the direction of the arrow indicated in FIG. 14 ) until the projection 184 is aligned with the corresponding setting on the timing scale 190 (i.e., “12”).
- the through-holes 192 , 196 become misaligned and require the seed plate 166 and shaft 86 to be rotated until the through-holes 192 , 196 are aligned once again.
- the linch pin 198 can subsequently be secured in the through-holes 192 , 196 to permit operation of the planter 10 .
- the planter 10 discharges seed into adjacently-spaced furrows.
- the planter units 16 , 18 preferably plant seed in an alternating pattern between the furrows so as to plant a large quantity of seed along the harvesting row while maintaining a desired spacing between adjacent seeds.
- the axial spacing of seeds (considering both furrows) along the harvesting row preferably is uniform.
- this synchronized operation of the planter units 16 , 18 is established by adjusting the relative timing of seed discharge between the units 16 , 18 .
- the metering assembly 68 is adjustable so that the metering assemblies 66 , 68 discharge seeds into the alternating pattern.
- seed is fed by gravity from the hopper 64 into the seed chamber 162 .
- Vacuum in the vacuum chamber 118 evacuates the seed chamber 162 and encourages the seed into engagement with the holes 168 so that each of the holes 168 function as a seed-selecting location or cell.
- the seed remains engaged with the respective holes 168 until it reaches the slot end 200 and the sloped edge 126 deflects the seed from the corresponding hole 168 into the seed boot.
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Abstract
Description
- 1. Field of the Invention
- The present invention relates generally to agricultural planting equipment. More specifically, an embodiment of the present invention concerns a twin-row planter including relatively adjustable seed metering assemblies of each planting unit pair for permitting selective variance of the seed stagger in the adjacent furrows.
- 2. Discussion of Prior Art
- Conventional row-crop planters include a plurality of planter units for planting seeds along spaced-apart rows. Some of these conventional planters include a single planter unit per row that plants seeds along a single furrow. Other planters known in the art include two planters per row and are referred to as twin row seed planters. Twin row planters enable the placement of seed along two closely-spaced furrows within the corresponding row. In particular, twin row planters can discharge seeds into an alternating pattern between adjacent furrows within the row, i.e., the two planters alternately position seed. In this manner, twin row planters enable a greater number of seeds to be planted along the row than single row planters while maintaining the necessary spacing between individual seeds.
- Twin row planters are problematic and suffer from various undesirable limitations. It is highly desirable to have the seeds in the closely-spaced furrows to be relatively positioned in a desired pattern. Typically, this pattern constitutes equidistant spacing (i.e., uniform staggering) of the seeds between the furrows. However, the problem is that if the speed of the drive mechanism relative to the ground speed is changed, the stagger between adjacent furrows changes. In some instances, seeds from the two furrows could be placed immediately adjacent one another. With prior art twin row planters, users have attempted to reconfigure the seed stagger between furrows by adjusting the transmission that interconnected the planter units. In particular, users would shift a drive chain from one position to another on a corresponding sprocket by “jumping the chain off the sprocket.” This technique is problematic because the step of repositioning the chain fails to indicate the resulting seed stagger pattern. As a consequence, the user of this method typically must observe the pattern resulting from the chain adjustment and then, if necessary, make additional adjustments to the transmission to achieve the desired pattern. This iterative method requires guesswork by the user and is commonly very time consuming, imprecise, and difficult to repeat for subsequent planter pairs.
- The present invention provides a twin row seed planter that does not suffer from the problems and limitations of the prior art planters set forth above.
- A first aspect of the present invention concerns a twin row seed planter broadly including a pair of planting units and a drive mechanism. The pair of planting units is operable to seed a pair of closely-spaced adjacent furrows forming a single harvesting row. A first one of the planting units corresponds with a first one of the furrows and a second one of the planting units corresponds with a second one of the furrows. The first planting unit includes a first rotatable metering wheel having a plurality of circumferentially spaced seed-receiving first cells. The second planting unit includes a second rotatable metering wheel having a plurality of circumferentially spaced seed-receiving second cells. The second metering wheel is positioned relative to the first metering wheel to present an angular relationship between the first and second cells. The drive mechanism is operable to supply power to the planting units so as to cause rotation of the wheels. The second metering wheel is drivingly disconnectable from the drive mechanism and repositionable relative to the first metering wheel to adjust the angular relationship between the first and second cells so as to vary spacing of the seed in the second furrow relative to seed in the first furrow.
- A second aspect of the present invention concerns a method of adjusting the seed stagger between a pair of closely-spaced adjacent furrows planted by respective planting units of a twin row planter, wherein each of the planting units includes a rotatable seed metering wheel. The seed stagger adjustment method broadly includes the steps of determining an initial angular relationship between the seed metering wheels of the planting units, comparing the initial angular relationship with an adjusted angular relationship corresponding to a desired seed stagger between the furrows, and relatively shifting the seed metering wheels from the initial angular relationship to the adjusted angular relationship.
- Other aspects and advantages of the present invention will be apparent from the following detailed description of the preferred embodiments and the accompanying drawing figures.
- Preferred embodiments of the invention are described in detail below with reference to the attached drawing figures, wherein:
-
FIG. 1 is a fragmentary perspective view of a twin row planter constructed in accordance with a preferred embodiment of the present invention; -
FIG. 2 is a top view of the twin row planter shown inFIG. 1 ; -
FIG. 3 is a left side view of the twin row planter shown inFIGS. 1 and 2 ; -
FIG. 4 is a right side view of the twin row planter shown inFIGS. 1-3 ; -
FIG. 5 is a fragmentary perspective view of the twin row planter shown inFIGS. 1-4 , showing a drive mechanism and seed metering assembly of the planter; -
FIG. 6 is an exploded perspective view of the twin row planter shown inFIGS. 1-5 , showing an adjustable sprocket assembly of the planter exploded from the corresponding seed metering assembly; -
FIG. 7 is an enlarged exploded view of the twin row planter shown inFIGS. 1-6 , showing the adjustable sprocket assembly partly exploded from the seed metering assembly; -
FIG. 8 is a partly exploded view of the seed metering assembly shown inFIGS. 1-7 , showing a metering wheel, seed singulator, and deflector block exploded away from a remainder of the seed metering assembly; -
FIG. 9 is a fragmentary exploded view of the seed metering assembly shown inFIGS. 1-8 , showing the metering wheel mounted on a rotatable shaft of the metering assembly and the adjustable sprocket assembly exploded away from the shaft; -
FIG. 10 is a schematic side view of the metering wheel shown inFIGS. 1-9 , showing the configuration of seed plate holes and rotational offset locations for each of a plurality of angular offsets; -
FIG. 11 is an enlarged fragmentary left side view of the twin row planter shown inFIGS. 1-7 , showing an indexing wrench installed onto the rotatable shaft and indicating a relative angular offset between a pair of seed metering assemblies that cooperatively plant seeds along a harvesting row; -
FIG. 12 is an enlarged fragmentary left side view of the seed metering assembly shown inFIGS. 1-7 and 11, showing a timing disk and timing scale of the adjustable sprocket assembly positioned with the angular offset of the seed metering assemblies being at a value of eighteen (18); -
FIG. 13 is an enlarged fragmentary left side view of the seed metering assembly shown inFIGS. 1-7 , 11, and 12, showing the timing disk and timing scale shifted in a counterclockwise direction for changing the angular offset of the seed metering assemblies to a value of twelve (12); and -
FIG. 14 is an enlarged fragmentary left side view of the seed metering assembly shown inFIGS. 1-7 and 11-13, showing the metering wheel and rotatable shaft shifted in a counterclockwise direction to the angular offset value of twelve (12). - The drawing figures do not limit the present invention to the specific embodiments disclosed and described herein. The drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the preferred embodiment.
- Turning initially to
FIG. 1 , a twin rowagricultural seed planter 10, operable to be pulled by a tractor (not shown), is depicted and is particularly suited for row-crop planting of numerous plant varieties (e.g., soybeans, peanuts, cotton, corn, cucumbers, melons, onions, pumpkins, sorghum, and sunflowers). As will be discussed in greater detail, the illustratedtwin row planter 10 provides an optimal spacing between adjacent seeds by planting seeds into a pair of adjacent furrows within a corresponding harvesting row. Thetwin row planter 10 broadly includes achassis 12, adrive mechanism 14, and fixed and 16,18. As will be discussed, theadjustable planter units 16,18 cooperatively plant adjacent furrows within the harvesting row and thereby operate as a synchronized twin planter assembly. While only one twin planter assembly is shown in the illustratedplanter units seed planter 10, those of ordinary skill in the art will appreciate that as many as eight or twelve of the twin planter assemblies are commonly used in oneseed planter 10. Thechassis 12 anddrive mechanism 14 are conventional components such as those found on the MONOSEM planter available from MONOSEM, Inc. of Lenexa, Kans. - Turning to
FIGS. 1-4 , thechassis 12 broadly includes, among other things, atool bar 20 and offset 22,24. Theplanter attachment assemblies tool bar 20 includes atubular beam 26 that extends transversely relative to an axial direction of thetwin row planter 10 and supports the 22,24. Theassemblies 22,24 each preferably include aassemblies pivotal linkage 28. Thepivotal linkage 28 includeslinks 30, atool bar bracket 32, andU-bolt fasteners 34 for securing thebracket 32. Thelinks 30 are pivotally mounted on thebracket 32 and, as will be discussed, thelinks 30 are pivotally attached to the 16,18. Those of ordinary skill in the art will appreciate that, while only one pair ofcorresponding planter unit 22,24 are depicted, theattachment assemblies twin row planter 10 preferably includes a plurality of attachment assembly pairs spaced along thetool bar 20 for receiving a plurality of twin planter assemblies. -
Assembly 24 also includes an offsetbracket assembly 36 for spacing the 16,18 axially from one another. The offsetplanter units bracket assembly 36 includes anelongated body 38 andU-bolt fasteners 40 for attaching thebody 38 to thetool bar 20 so that thebody 38 is cantilevered therefrom. Thepivotal linkage 28 ofassembly 24 is attached to a rearwardly-spaced end of the offsetbracket assembly 36. Thelinkage 28 ofassembly 22 is attached directly to thetool bar 20 bybracket 32 andU-bolt fasteners 34. Again, thelinks 30 are interconnected withrespective brackets 32 at pinned joints and extend rearwardly therefrom. In this manner, each of thelinks 30 preferably pivot relative to thetool bar 20 about a corresponding horizontal axis. While eachlinkage 28 preferably includes a pair oflinks 30 spaced vertically from one another, it is within the ambit of the present invention where analternative linkage 28 is used to permit relative vertical movement between the 16,18 andplanter units tool bar 20. - The
chassis 12 further includes a top tool bar (not shown) that provides a manifold for supplying vacuum to the 16,18. Vacuum is supplied to theplanter units 16,18 by a vacuum source (not shown), such as a pump, via corresponding vacuum hoses (not shown).planter units - Turning to
FIGS. 1-5 , thedrive mechanism 14 powers each of the 16,18. Theplanter units drive mechanism 14 preferably includes a driving connection to ground wheels (not shown) of theplanter 10 that serves as the power source for thetwin row planter 10. However, it is within the ambit of the present invention where theplanter 10 includes an alternative power source. For example, thetwin row planter 10 could include a hydraulic motor or a variable speed electric motor for powering theplanter 10. Such wheels would be rotatably attached to thechassis 12 and would spin in response to contact with the ground. Further details of a preferred planter with drive wheels are described in U.S. Pat. No. 6,520,100, issued Feb. 18, 2003, entitled TWIN ROW PLANTER, which is hereby incorporated by reference herein. - The
drive mechanism 14 also preferably includes adrive shaft 42, drivesprockets 44, drivenshaft 46, drivensprockets 48, fixedidlers 50,adjustable idlers 52, anddrive chains 54. The 42,46 are rotatably mounted on theshafts chassis 12. Thedrive shaft 42 is positioned adjacent thetool bar 20 and extends in front of both 16,18. The drivenplanter units shaft 46 is spaced axially behind thedrive shaft 42 and extends primarily in front ofplanter unit 18. The drive sprockets 44 are mounted on thedrive shaft 42, and drivensprockets 48 are mounted on drivenshaft 46. Onechain 54 drivinglyinterconnects planter unit 16 and the respectiveadjacent drive sprocket 44. Twoadditional chains 54 drivingly interconnect theplanter unit 18, the drivensprockets 48, and the respectiveadjacent drive sprocket 44. While the illustrated 44,48 andsprockets chains 54 are preferred for transmitting power through thedrive mechanism 14, the principles of the present invention are applicable where other power transmitting elements are used, such as gear drives or belt-and-pulley drives. As will be discussed, theillustrated drive mechanism 14 preferably drives the 16,18 synchronously (i.e., at the same time).planter units - The
16,18 broadly include aplanter units planter frame 56, a depthgauge wheel assembly 58, afurrow opener 60, a furrow closer 62, aseed hopper 64, a seed tube (not shown), and 66,68. Except for theseed metering assemblies 66,68, all of the components ofseed metering assemblies 16,18 are conventional such as those found on the MONOSEM planter available from MONOSEM, Inc. Theplanter units planter unit 18 is preferably axially spaced behind theplanter unit 16. More preferably, the illustratedplanter unit 18 is axially spaced behindplanter unit 16 by 17.75 inches. However, it is within the ambit of the present invention where the 16,18 are positioned with an alternative axial spacing, such as 9 or 25 inches. It is also consistent with the scope of the present invention where theplanter units planter unit 18 is spaced ahead ofplanter unit 16. - The
planter frame 56 includes aframe body 72 and alinkage bracket 74 fixed to thebody 72. Theplanter frame 56 further presents an opening for receiving a corresponding one of the 66,68. Theseed metering assemblies frame body 72 is preferably a rigid structure with several structural components welded or fastened together. - The
16,18 are pivotally attached toplanter units linkage 28. In particular, thelinkage bracket 74 is attached to thelinks 30 at pinned joints so that the 16,18 are shiftable relative to theplanter units chassis 12 in a substantially upright direction. In other words, thelinkage 28 operates as a four-bar linkage to restrict rotational shifting of the 16,18 while permitting upright shifting thereof.planter units - The
gauge wheel assembly 58 includesgauge wheels 76 rotatably mounted on theframe body 72. Thegauge wheel assembly 58 is operable to roll on top of a ground surface and thereby maintain the height of the 16,18 relative to the ground surface. Theplanter unit furrow opener 60 includes adisc 78 rotatably mounted to theframe body 72 for opening the corresponding furrow. The furrow closer 62 is spaced axially behind thefurrow opener 60 and includespress wheels 80 pivotally attached to theframe body 72 byarms 82. Theseed hopper 64 comprises a container for holding seed (not shown) and is preferably mounted to theframe 56 above the 66,68 so that seed is fed by gravity into therespective metering assembly 66,68. While eachmetering assembly 16,18 preferably includes one of theplanter unit hoppers 64, it is also within the ambit of the present invention where a plurality of 16,18 use a common hopper.planter units - Turning to
FIGS. 5-9 , the 66,68 include aseed metering assemblies housing 84, arotatable shaft 86 rotatably mounted in thehousing 84, and ametering wheel 88. Theseed metering assembly 66 also includes a fixed sprocket assembly 90 (seeFIG. 3 ) for connecting with thedrive mechanism 14. As will be discussed in greater detail, theseed metering assembly 68 preferably includes anadjustable sprocket assembly 92 for connecting with the drive mechanism and an angular adjustment indicator 94 (seeFIG. 7 ). The principles of the present invention are also applicable whereseed metering assembly 66, or both 66,68 include theseed metering assemblies adjustable sprocket assembly 92. - The
housing 84 is operable to substantially enclose themetering wheel 88 and includes avacuum section 96, acover section 98, and aninsert assembly 100. Thevacuum section 96 presents anair vent 102 along an outer side thereof and aninner cavity 104. Thevacuum section 96 also includes fixed and rotatable dowel pins 106 a,b and threaded studs 108 (seeFIG. 8 ). Therotatable dowel pin 106 b includes an eccentric end, the use of which will be described. - The
insert assembly 100 includes a plasticannular insert 110 and acircular cap 112. Theannular insert 110 presents a circular opening through which theshaft 86 is received and anannular slot 116 that extends around the opening. Thecap 112 is partly received within the circular opening and is secured to thevacuum section 96 by fasteners. Theinsert assembly 100 is received within theinner cavity 104 and is held therein by thecap 112. Thevacuum section 96 and insertassembly 100 cooperatively define avacuum chamber 118, with theslot 116 andair vent 102 preferably forming two openings that fluidly communicate with thechamber 118. However, it is within the ambit of the present invention where thechamber 118 is alternatively configured. Theannular insert 110 also serves as a gasket or wear surface for receiving themetering wheel 88. - Turning to
FIG. 8 , thehousing 84 further includes aseed singulator 120 and aseed deflector block 122. Theseed singulator 120 is substantially unitary and includes aserrated edge 124. Theseed singulator 120 is mounted onto dowels pins 106 a,b adjacent to themetering wheel 88. As thedowel pin 106 b is rotated, the eccentric end thereof shifts thesingulator 120 relative to thevacuum section 96 to accommodate different sizes of seed, as will be discussed. - The
deflector block 122 is unitary and is shiftably mounted adjacent themetering wheel 88. Thedeflector block 122 presents asloped edge 126 for deflecting seeds into the seed boot. Thedeflector block 122 is mounted on an inside surface of thecover section 98. - Turning back to
FIGS. 5-9 , thehousing 84 also includes avacuum control 128 for adjusting the vacuum level present in the 66,68. Theseed metering assembly vacuum control 128 includes acontrol lever 130 for controlling the vacuum level by selectively opening a vent (not shown). Thevacuum control 128 also includes avacuum adjustment scale 132 presented on an outer surface of thevacuum section 96 for indicating a setting of thecontrol lever 130. Thecontrol lever 130 also is interconnected with and is thereby configured to rotate thedowel pin 106 b. Correspondingly, thecontrol lever 130 is configured to shift thesingulator 120 and adjust the vent at the same time. - The
rotatable shaft 86 includes ashaft body 134 presenting inner and outer shaft ends 136,138. Theshaft body 134 also comprises an inner shaft portion 135 a and anouter sleeve portion 135 b that are attached to one another with a roll pin (not shown). Theouter sleeve portion 135 b of theshaft body 134 presents an annular groove 140 and a hex section 142 spaced between the 136,138. Theends rotatable shaft 86 also includes aspring pin 144 received within a corresponding through-hole and acotter pin 146 received in the groove 140. Therotatable shaft 86 is rotatably mounted in thevacuum section 96 with the 136,138 extending oppositely therefrom.ends - The
cover section 98 includes aunitary wall 148 that presents a seed trap opening (not shown), aview opening 152, and aseed supply opening 154. Thecover section 98 also includes atrap door 156 pivotally attached to thewall 148 to selectively cover the seed trap opening. Thecover section 98 further includes acontrol window 158 pivotally attached to thewall 148. Thecontrol window 158 is biased by a spring into a position covering theview opening 152. Thecontrol window 158 includes a plurality of openings that permit air to pass into the 66,68 while themetering assembly window 158 covers theview opening 152. Thecontrol window 158 is selectively openable to view inside the 66,68.metering assembly - The
cover section 98 is attachable to thevacuum section 96 by positioning thecover section 98 adjacent thereto so that the threadedstuds 108 pass through corresponding holes in thecover section 98.Wing nuts 160 are threaded onto thestuds 108 to secure the 96,98 to one another and define asections seed chamber 162 between thecover section 98 and insertassembly 100. The 96,98 cooperatively present a lowermost seed opening 164 that permits seed to be discharged from thesections seed chamber 162 into the seed boot. - The
metering wheel 88 includes a stainlesssteel seed plate 166 and acircular agitator 167 attached to one another and mounted on therotatable shaft 86 adjacent theinner end 136 thereof. Theseed plate 166 is preferably circular and includes eighteen (18)holes 168 spaced uniformly along the outermost circumference of the seed plate 166 (seeFIG. 10 ) and serve as seed-receiving cells. Each pair ofadjacent holes 168 are spaced from one another at a cell angle of twenty degrees. However, the principles of the present invention are applicable where theseed plate 166 includes an alternative number of cells, such as 12, 24, or 36. With theseed plate 166 installed in the 66,68, a portion of themetering assembly holes 168 are spaced adjacent theannular slot 116 at a particular time. The 118,162 fluidly communicate through thosechambers holes 168 and theannular slot 116. While the illustrated 66,68 preferably include the illustratedmetering assemblies metering wheel 88, the it is also within the scope of the present invention where the 66,68 utilize an alternative metering mechanism, such as a metering wheel with a cup-type seed-securing cell.metering assemblies - The
circular agitator 167 is preferably constructed of brass and includesblades 169 that displace seed within theseed chamber 162 and lugs 170 positioned on an opposite side from theblades 169 on theagitator 167. Theagitator 167 is fixed to theseed plate 166 by a plurality of fasteners so that themetering wheel 88 operates as a unitary structure. - The
metering wheels 88 all preferably include an identical configuration of cells so that seeds are uniformly spaced among furrows. However, the principles of the present invention are also applicable where themetering wheels 88 have different configurations such that 16,18 discharge seed at different seed spacings along a pair of adjacent furrows.planter units - Turning to
FIGS. 8 and 9 , themetering wheel 88 is mounted ontoshaft 86 adjacent theend 136 thereof, with thespring pin 144 being spaced adjacent themetering wheel 88 and thelugs 170. As theshaft 86 is rotated in the forward direction shown by the arrow, thespring pin 144 engages thelugs 170 and causes themetering wheel 88 to also rotate in the forward direction with theshaft 86. As previously discussed, themetering wheel 88 is received by theannular insert 110 in a sliding relationship, with theinsert 110 serving as a gasket and providing a wear surface. - The
metering wheel 88 operates by rotating along a forward direction shown by the arrow. Thesingulator 120 is positioned laterally adjacent and slidably engages themetering wheel 88, with a fine spacing therebetween, so that theserrated edge 124 is positioned adjacent theholes 168. While thesingulator 120 preferably contacts themetering wheel 88, it is also within the ambit of the present invention where thesingulator 120 is entirely spaced from themetering wheel 88. Thesingulator 120 is configured to displace seed from theholes 168 so that eachhole 168 secures a single seed. As previously discussed, thesingulator 120 is configured to be shifted by thecontrol lever 130. More particularly, thesingulator 120 is configured to be shifted relative to the cells of theseed plate 166 to accommodate different sizes and shapes of seed while ensuring that only one seed becomes secured within the corresponding cell. - The
deflector block 122 is also spaced adjacent themetering wheel 88. Thesloped edge 126 extends radially from within the radial position of theholes 168 on themetering wheel 88 to a position outside of the radial position of theholes 168. In this manner, thesloped edge 126 serves to deflect seed from the correspondinghole 168 and direct the seed into the seed boot (not shown). - Turning to
FIG. 7 , theangular adjustment indicator 94 presents anangular scale 172 along one side thereof for indicating angular offset between the 66,68, as will be discussed in greater detail. The illustratedseed metering assemblies angular scale 172 preferably includes a range of indicator marks from zero (0) degrees angular offset up to thirty (30) degrees angular offset. Theangular scale 172 also preferably includes angular indicator marks at two degree increments. However, it is also consistent with the principles of the present invention where the range of indicator marks or their relative spacing are either lesser or greater than the illustrated embodiment. As will be discussed, the illustrated embodiment preferably utilizes indicator marks ranging from “0” to “18”. - Turning to
FIGS. 1-9 , the 66,68 are mounted within the correspondingseed metering assemblies frame 56. With respect to both 66,68, vacuum hoses (not shown) fluidly interconnect the vacuum source and also themetering assemblies air vent 102 on thehousing 84 so that thevacuum chamber 118 is operable to be evacuated. Theseed chamber 162 is configured to receive seed from thehopper 64. Theholes 168 function as a seed-selecting location or cell as vacuum in thevacuum chamber 118 draws air through theholes 168 from theseed chamber 162. In particular, this vacuum-driven selection of seed occurs only along the circumferential length of theannular slot 116. Only along this circumferential length do the 118,162 fluidly communicate. Therefore, as thechambers metering wheel 88 rotates, seed is configured to be secured to the particular cell at a point along the circumferential length of theslot 116 and released adjacent aslot end 173. Thus, seed is discharged from the 66,68 at a position adjacent themetering assembly slot end 173, with thesloped edge 126 deflecting the seed from the correspondinghole 168 into the seed boot (not shown). - Turning to
FIGS. 6-9 , theadjustable sprocket assembly 92 serves as a connector for adjustably connecting thedrive mechanism 14 to therotatable shaft 86 so that theseed plates 166 of the twin planter assembly are shiftable relative to one another. Theadjustable sprocket assembly 92 includes asprocket plate assembly 174, aspacer 175, and atiming plate assembly 176, with the 174,176 being selectively and adjustably attached to one another.plate assemblies - The
sprocket plate assembly 174 includes asprocket 178 and aplate 180 that are mounted onto and integrally formed with acylindrical shaft 182. As will be discussed, the illustratedsprocket 178 preferably includes eighteen (18)teeth 183. However, it is also within the ambit of the present invention where thesprocket 178 includes a greater or fewer number ofteeth 183. Theadjustable sprocket assembly 92 further includes aprojection 184 that extends from theplate 180 adjacent the outer circumference of theplate 180 and extends parallel to the shaft axis. - The
timing plate assembly 176 includes atiming disk 186, acylindrical mount 188, and atiming scale 190. Thecylindrical mount 188 includes a through-hole 192 that extends transversely to the shaft axis. Thetiming disk 186 presents twenty (20) indexing holes 194 that are uniformly spaced along the outermost plate circumference, with an eighteen-degree indexing angle between each pair ofadjacent holes 194. However, the principles of the present invention are equally applicable where theplate 186 includes an alternative number of indexing holes 194. As will be discussed, the number of indexing holes 194 is preferably greater than the number ofholes 168. However, thetiming disk 186 could alternatively include a number ofindexing holes 194 less than the number ofholes 168, although such an arrangement is not shown. - The
timing scale 190 is annular and is preferably constructed of a thin magnetic material with a printable overlay adhered thereto. Thetiming scale 190 includes a plurality of numbereddivisions 195 spaced along an outer circumference thereof (seeFIGS. 12-14 ). Thedivisions 195 are preferably angularly spaced uniformly and at an angle from one another identical to the indexing angle ofholes 194 discussed above. Thus, thedivisions 195 are configured to identify the indexing holes 194 and to thereby permit a predetermined adjustment of thetiming plate assembly 176 relative to thesprocket plate assembly 174. While thedivisions 195 are preferably numbered from “0” to “38” in a counterclockwise direction, it is also within the scope of the present invention to number thedivisions 195 in an alternative manner. Furthermore, it is also consistent with the principles of the present invention where thetiming scale 190 identifies only some of the indexing holes 194, e.g., withdivisions 195 numbered from “0” to “18.” As will be discussed, the illustrated embodiment only utilizesdivisions 195 from “0” to “18.” - The
timing scale 190 is preferably magnetic so as to be selectively magnetically secured onto thetiming disk 186. However, the principles of the present invention are applicable where thetiming scale 190 is alternatively removably secured on thetiming disk 186. For example, thetiming scale 190 could be secured to thetiming disk 186 with conventional removable fasteners or thetiming scale 190 could take a different form, such as a dial indicator. - The
timing plate assembly 176 is received onto theplate 180 by aligning theprojection 184 with a selected one of theholes 194 while positioning theshaft 86 within thecylindrical mount 188 and theshaft 182. Thus, thetiming plate assembly 176 and thesprocket plate assembly 174 cooperatively provide a clutch that interconnects theshaft 86 and thedrive mechanism 14. As will be discussed, thetiming plate assembly 176 andsprocket plate assembly 174 can be aligned so that any one of theholes 194 receives theprojection 184. - The
adjustable sprocket assembly 92 is received onto theshaft 86 by initially mounting thesprocket plate assembly 174 onto theshaft 86 with theplate 180 being outboard of thesprocket 178. Thesprocket plate assembly 174 is rotatably mounted onto theshaft 86 and is configured so that thedrive chain 54 can be entrained onto thesprocket 178. Thus, the 90,92 are drivingly interconnected with thesprocket assemblies respective drive chains 54. As thedrive shaft 42 is rotated, thedrive chains 54 rotate the 90,92.sprocket assemblies - The
timing plate assembly 176 is also configured to mount on theshaft 86, with one of theholes 194 receiving theprojection 184 as discussed above. In this manner, thetiming plate assembly 176 andsprocket plate assembly 176 rotate together on theshaft 86. As the through-hole 192 is aligned with a through-hole 196 in theshaft 86, alinch pin 198 can be inserted into both through- 192,196 to rotatably lock theholes shaft 86 to theadjustable sprocket assembly 92. Consequently, theadjustable sprocket assembly 92 becomes fixed to themetering wheel 88 of theseed metering assembly 68. Similarly, thelinch pin 198 can be removed to permit relative rotational movement between theshaft 86 andadjustable sprocket assembly 92 as well as removal of theadjustable sprocket assembly 92 entirely from theshaft 86. Again, thedrive chains 54 are configured to rotate the 90,92 and, in turn, thesprocket assemblies metering wheels 88 within the 66,68.seed metering assemblies - Turning to
FIG. 10 , the number and spacing of indexing holes 194 is determined based on the hole configuration for theseed plate 166 and the desired angular offset increment. As discussed, the 18holes 168 inseed plates 166 are spaced at twenty-degree intervals from one another. The illustrated angular offset increment is two degrees as illustrated by thetiming scale 190 andangular scale 172. In the preferred embodiment, the uniform spacing ofholes 168 permits theplates 166 to be offset by rotating one of theseed plates 166 through a larger angle θn than the corresponding angular offset. In the illustrated embodiment, theseed plate 166 can be rotated through an angle of twenty minus two degrees (i.e., θ1=18 degrees) in order to achieve a two degree offset betweenseed plates 166. Correspondingly, theseed plate 166 can be rotated through an angle of forty minus four degrees (i.e., θ2=36 degrees) in order to achieve a four degree offset. Thus, for every “n” increment of angular offset (i.e., resulting in an angular offset of “2×n” degrees), theseed plate 166 is rotated through an angle θn=[(20×n)−(2×n)]=“18×n” degrees. In other words, theseed plate 166 is rotated through an angle nine times greater than the desired angular offset. While theseed plates 166 are preferably adjustable at two degree increments relative to one another, it is within the ambit of the present invention where theseed plates 166 are adjustable at other angular offset increments. - The
adjustable sprocket assembly 92 and theseed plates 166 cooperatively enable the mechanism discussed above for offsetting the 66,68. The indexing holes 194 are spaced at eighteen (18) degree increments, resulting in twenty (20) indexing holes 194. While the preferred configuration of theseed metering assemblies timing plate assembly 176 and the seed plates results inmore indexing holes 194 thanholes 168, the principles of the present invention are applicable where there are fewer indexing holes 194 thanholes 168. Thetiming disk 186 includes twentyholes 194 corresponding to various offset angles θn of theseed plates 166. For a given offset angle of theseed plate 166, thetiming disk 186 is rotated through an angle nine times greater than the offset angle of theseed plate 166. Thus, a scale ratio can be defined between the angle of rotation for thetiming disk 186 and for theseed plate 166. In the illustrated embodiment, the scale ratio is 9:1, but it is also within the ambit of the present invention where the scale ratio ranges between about 5:1 and 20:1. The scale ratio enables a suitable spacing of indexing holes 194 on thetiming disk 186 for indexing theseed plate 166 at fine angular offsets. For example, if thetiming disk 186 included holes spaced at two-degree increments for positioning theseed plate 166 at corresponding two-degree increments, such a timing disk would need to be substantially larger than in the illustrated embodiment for the indexing holes to fit on the plate, or a more complicated indexing mechanism would be required. While theseed planter 10 preferably includes the illustratedadjustable sprocket assembly 92 for indexing theseed plate 166, it is also within the ambit of the present invention where other mechanisms are used to introduce a desired offset betweenmetering wheels 88 of theplanter 10 without adjusting thedrive mechanism 14. - The synchronized twin planter assembly is adjustable to plant seeds within a range of seed spacing along a given furrow, preferably between about 6 inches and 20 inches. However, the principles of the present invention are applicable where the seed spacing along a furrow is less than 6 inches or greater than 20 inches.
- As previously mentioned, the illustrated
sprocket 178 preferably includes 18teeth 183. More preferably, thesprocket 178 includes the same number ofteeth 183 asholes 168 in bothseed plates 166. Thus, in the event where thedrive chain 54 slips relative to thesprocket 178, theseed plate 166 will shift through an angle equivalent to the cell angle or a multiple thereof, depending on the number ofteeth 183 that were skipped. In other words, the uniformly-spacedholes 168 of oneseed plate 166 will remain in the same offset angle relative to theother seed plate 166 should thechain 54 skip over one ormore teeth 183. While the illustratedsprocket 178 preferably includes eighteen (18)teeth 183, it is also consistent with the principles of the present invention where thesprocket 178 includes an alternative number ofteeth 183. For example, if theseed plates 166 each present twelve (12)holes 168, thesprocket 178 could correspondingly include twelve (12)teeth 183 so that inadvertent jumping of thechain 54 would not impact the offset angle of theseed plates 166. Importantly, when the number ofteeth 183 and the number ofholes 168 are preferably matched, the illustratedadjustable sprocket assembly 92 is required for adjusting the relative offset angle of theseed plates 166. In other words, thechain 54 can no longer be “jumped” relative to thesprocket 178 to adjust the offset angle. - Synchronization of the twin planter assembly is initiated by adjusting the fixed
planter unit 16. In particular, themetering wheel 88 is rotated until one of theholes 168 is aligned with anoutermost tip 202 of the seed singulator 120 (i.e, themetering wheel 88 is positioned into a zero degree reference position, as shown inFIG. 8 ). Rotation of themetering wheel 88 is performed by applying a drive adjustment wrench (not shown) to thedrive mechanism 14 at ahex end 204 of thedrive shaft 42 and rotating thedrive shaft 42 in the direction indicated by the arrow shown inFIG. 4 . Anindexing wrench 206 is positioned on the hex section 142 so that anindicator mark 208 on thewrench 206 points to the angular offset between themetering wheels 88, as indicated on theangular scale 172. If theindicator mark 208 does not point to theangular scale 172, the drive adjustment wrench is rotated until thetip 202 is aligned with thenext hole 168 where themark 208 points to a location on theangular scale 172. With themetering wheel 88 of the fixedplanter unit 16 being positioned into the zero degree reference position, theother metering wheel 88 can be adjusted to the desired angular offset. - Turning to
FIGS. 11-14 , the angular offset of theseed plates 166 is adjusted by initially determining the pre-existing offset. Anindexing wrench 206 is mounted to the hex section 142 as shown inFIG. 11 so that anindicator mark 208 on thewrench 206 points to the angular offset between themetering wheels 88, as indicated on the angular scale 172 (i.e., eighteen (18) degrees in the illustrated embodiment). Thetiming scale 190 is then indexed to that setting by positioning thescale 190 on thetiming disk 186 so that the number indicated on the angular scale 172 (“18” in the illustrated embodiment) is aligned adjacent the projection 184 (seeFIG. 12 ). The desired angular offset is determined from a reference chart shown in Table 1 below. The illustrated reference chart calculates the desired angular offset based on the number of seed-receiving cells N in eachseed plate 166, the seed spacing D in each furrow (identified as “Average Seed Distance”), and the axial offset F between 66,68 of the seed planter 10 (identified as “Left Twin Row Offset”). Notably, for the illustratedseed metering assemblies seed plates 166 with eighteen (18)holes 168, the desired angular offset ranges in value in Table 1 from zero (0) to eighteen (18). Thus, as discussed previously, preferably only the corresponding indicator marks on thetiming scale 190 andangular scale 172 are utilized. Moreover, the scales could be alternatively configured to identify only the necessary indicator marks (i.e., with the illustrated embodiment, the scales would only have marks ranging from zero (0) to eighteen (18)). - The tabular values illustrated in Table 1 are calculated initially by determining the desired seed spacing D (inches) within each furrow, based on the distance W (inches) from center to center of adjacent harvesting rows and the number S of seeds planted per acre:
-
-
TABLE 1 9″ Left Twin Row Offset 17.75″ Left Twin Row Offset 25″ Left Twin Row Offset Average Average Average Seed NO. OF Seed NO. OF Seed NO. OF Distance CELLS Distance CELLS Distance CELLS (inch) 12 18 24 36 (inch) 12 18 24 36 (inch) 12 18 24 36 6 0 0 0 6 10 8 6 6 6 4 4 6⅙ 0 0 0 6⅛ 12 8 6 6⅛ 8 6 4 6¼ 2 0 0 6¼ 14 8 6 6¼ 10 6 6 6⅜ 2 2 0 6⅜ 14 10 8 6⅜ 12 8 6 6½ 2 2 2 6½ 16 10 8 6½ 14 8 6 6⅝ 2 2 2 6⅝ 16 10 8 6⅝ 14 10 8 6¾ 4 2 2 6¾ 18 12 8 6¾ 16 10 8 6⅞ 4 2 2 6⅞ 18 12 10 6⅞ 18 12 8 7 4 2 7 20 12 7 18 12 7⅛ 4 4 7⅛ 0 0 7⅛ 20 12 7¼ 6 4 7¼ 2 0 7¼ 2 0 7⅜ 6 4 7⅜ 2 2 7⅜ 2 2 7 3/2 6 4 7½ 2 2 7½ 4 2 7⅝ 6 4 7⅝ 4 2 7⅝ 4 2 7¾ 6 4 7¾ 4 2 7¾ 8 4 7⅞ 8 4 7⅞ 4 4 7⅞ 8 4 8 8 4 8 6 4 8 8 4 8⅛ 8 6 8⅛ 6 4 8⅛ 8 6 8¼ 8 6 8¼ 6 4 8¼ 10 6 8⅜ 8 6 8⅜ 8 4 8⅜ 10 6 8½ 8 6 8½ 8 6 8½ 12 6 8⅝ 10 6 8⅝ 8 6 8⅝ 12 8 8¾ 10 6 8¾ 10 6 8¾ 12 8 8⅞ 10 6 8⅞ 10 8 8⅞ 14 8 9 12 10 8 9 14 10 8 9 12 14 10 9⅛ 14 10 8 9⅛ 14 12 8 9⅛ 14 16 10 9¼ 14 10 8 9¼ 16 12 8 9¼ 14 16 10 9⅜ 14 10 8 9⅜ 16 12 8 9⅜ 14 18 10 9½ 14 12 8 9½ 16 12 8 9½ 14 18 12 9⅝ 14 12 8 9⅝ 18 14 8 9⅝ 14 18 12 9¾ 14 12 8 9¾ 18 14 8 9¾ 14 18 12 9⅞ 16 12 8 9⅞ 18 14 10 9⅞ 16 20 12 10 16 12 8 10 18 14 10 10 16 0 0 10¼ 16 12 8 10¼ 20 16 10 10¼ 16 2 0 10½ 16 12 8 10½ 22 16 10 10½ 16 2 2 10¾ 18 14 8 10¾ 22 16 12 10¾ 16 4 2 11 18 14 8 11 24 18 12 11 18 4 2 11¼ 18 14 10 11¼ 24 18 12 11¼ 18 6 6 11½ 18 14 10 11½ 24 20 12 11½ 18 6 6 11¾ 20 14 11¾ 26 20 11¾ 20 8 12 20 16 12 0 0 12 20 8 12¼ 20 16 12¼ 2 2 12¼ 20 10 12½ 20 16 12½ 2 2 12½ 20 10 12¾ 20 16 12¾ 2 2 12¾ 20 10 13 20 16 13 4 2 13 20 12 13¼ 22 16 13¼ 4 4 13¼ 22 12 13½ 22 16 13½ 4 4 13½ 22 12 13¾ 22 16 13¾ 8 4 13¾ 22 14 14 22 18 14 8 4 14 22 14 14¼ 22 18 14¼ 8 6 14¼ 22 14 14½ 22 18 14½ 8 6 14½ 22 16 14¾ 24 18 14¾ 8 6 14¾ 24 18 15 24 18 15 8 6 15 24 18 15¼ 24 15¼ 8 15¼ 24 15½ 24 15½ 10 15½ 24 15¾ 24 15¾ 10 15¾ 24 16 24 16 10 16 24 16¼ 24 16¼ 10 16¼ 24 16½ 24 16½ 12 16½ 24 16¾ 0 16¾ 12 16¾ 0 17 0 17 12 17 0 17¼ 0 17¼ 12 17¼ 0 17½ 0 17½ 12 17½ 0 17¾ 0 17¾ 12 17¾ 0 18 0 18 14 18 0 18½ 0 18½ 14 18½ 0 19 0 19 14 19 0 19½ 0 19½ 16 19½ 0 20 2 20 16 20 2 - Based on values known for D as well as the number of plate cells N and the axial offset F (inches) between adjacent planter units, a required relative angular position G (degrees) between
seed plates 166, as illustrated by the values tabulated in Table 1, can be determined as: -
- where C=0 if K=D/2, or C=D/2−K if K<D/2, or C=3/2*D−K if K>D/2. K is an intermediate value determined as follows: K=F if F<D, or K=F−D if F/2<D=<F, or K=F−2*D if F/3<D=<F/2, or K=F−3*D if F/4<D=<F/3, or K=F−4*D if F/5<D=<F/4. Thus, the required relative angular position G is an ideal relative angular position of the
seed plates 166 that is calculated based upon the above referenced parameters. - Turning to
FIGS. 13 and 14 , when the desired angular offset is determined (twelve degrees in the illustrated embodiment), thetiming disk 186 andtiming scale 190 are indexed to that setting by being rotated together (in the direction of the arrow indicated inFIG. 14 ) until theprojection 184 is aligned with the corresponding setting on the timing scale 190 (i.e., “12”). As a consequence, the through- 192,196 become misaligned and require theholes seed plate 166 andshaft 86 to be rotated until the through- 192,196 are aligned once again. Theholes linch pin 198 can subsequently be secured in the through- 192,196 to permit operation of theholes planter 10. - In operation, the
planter 10 discharges seed into adjacently-spaced furrows. Along the axial direction of the harvesting row, the 16,18 preferably plant seed in an alternating pattern between the furrows so as to plant a large quantity of seed along the harvesting row while maintaining a desired spacing between adjacent seeds. In other words, the axial spacing of seeds (considering both furrows) along the harvesting row preferably is uniform. Prior to planting, this synchronized operation of theplanter units 16,18 is established by adjusting the relative timing of seed discharge between theplanter units 16,18. In particular, theunits metering assembly 68 is adjustable so that the 66,68 discharge seeds into the alternating pattern.metering assemblies - During the planting operation, seed is fed by gravity from the
hopper 64 into theseed chamber 162. Vacuum in thevacuum chamber 118 evacuates theseed chamber 162 and encourages the seed into engagement with theholes 168 so that each of theholes 168 function as a seed-selecting location or cell. As mentioned previously, the seed remains engaged with therespective holes 168 until it reaches the slot end 200 and thesloped edge 126 deflects the seed from the correspondinghole 168 into the seed boot. - The preferred forms of the invention described above are to be used as illustration only, and should not be utilized in a limiting sense in interpreting the scope of the present invention. Obvious modifications to the exemplary embodiments, as hereinabove set forth, could be readily made by those skilled in the art without departing from the spirit of the present invention.
- The inventor hereby states his intent to rely on the Doctrine of Equivalents to determine and assess the reasonably fair scope of the present invention as pertains to any apparatus not materially departing from but outside the literal scope of the invention as set forth in the following claims.
Claims (40)
Priority Applications (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/558,551 US7377221B1 (en) | 2006-11-10 | 2006-11-10 | Twin row planter with adjustable seed metering |
| DE602007013514T DE602007013514D1 (en) | 2006-11-10 | 2007-08-22 | Double row planting machine with adjustable seed dosage |
| ES07016464T ES2364818T3 (en) | 2006-11-10 | 2007-08-22 | DOUBLE ROW SEEDER WITH ADJUSTABLE SEED DOSER. |
| AT07016464T ATE503371T1 (en) | 2006-11-10 | 2007-08-22 | DOUBLE ROW PLANTER WITH ADJUSTABLE SEED DOSAGE |
| EP07016464A EP1920647B1 (en) | 2006-11-10 | 2007-08-22 | Twin row planter with adjustable seed metering |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/558,551 US7377221B1 (en) | 2006-11-10 | 2006-11-10 | Twin row planter with adjustable seed metering |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| US20080110382A1 true US20080110382A1 (en) | 2008-05-15 |
| US7377221B1 US7377221B1 (en) | 2008-05-27 |
Family
ID=39015895
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US11/558,551 Active 2027-01-05 US7377221B1 (en) | 2006-11-10 | 2006-11-10 | Twin row planter with adjustable seed metering |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US7377221B1 (en) |
| EP (1) | EP1920647B1 (en) |
| AT (1) | ATE503371T1 (en) |
| DE (1) | DE602007013514D1 (en) |
| ES (1) | ES2364818T3 (en) |
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| US4478159A (en) * | 1981-09-28 | 1984-10-23 | Raymond Melgoza | Apparatus for planting seeds and the like |
| US6520100B1 (en) | 1998-09-24 | 2003-02-18 | Ati | Twin row planter |
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- 2007-08-22 ES ES07016464T patent/ES2364818T3/en active Active
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- 2007-08-22 DE DE602007013514T patent/DE602007013514D1/en active Active
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| US6070539A (en) * | 1997-03-21 | 2000-06-06 | Case Corporation | Variable rate agricultural product application implement with multiple inputs and feedback |
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Also Published As
| Publication number | Publication date |
|---|---|
| US7377221B1 (en) | 2008-05-27 |
| EP1920647B1 (en) | 2011-03-30 |
| DE602007013514D1 (en) | 2011-05-12 |
| EP1920647A1 (en) | 2008-05-14 |
| ATE503371T1 (en) | 2011-04-15 |
| ES2364818T3 (en) | 2011-09-14 |
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