ROTATING GROUND DRIVEN HIGH SPEED PRECISION VACUUM PLANTER WITH SEED INJECTION TEETH
20210161062 · 2021-06-03
Inventors
Cpc classification
A01C7/081
HUMAN NECESSITIES
A01C7/208
HUMAN NECESSITIES
A01C7/04
HUMAN NECESSITIES
A01C7/16
HUMAN NECESSITIES
A01C5/04
HUMAN NECESSITIES
International classification
A01C5/04
HUMAN NECESSITIES
A01C7/08
HUMAN NECESSITIES
Abstract
An agricultural seed planter is provided. The agricultural seed planter has a large diameter rotating planting wheel with fingers or teeth spaced around the periphery of the planting wheel. The teeth are positioned so as to achieve a spacing of the seeds when planted in the soil. The teeth have a small dimple in the end and an even smaller hole passing through the entire length. The dimple provides a place for the seed to sit in and the small hole allows positive or negative air pressure to be transmitted to the seed. The negative air pressure creates a vacuum suction that attaches the seed to the teeth, and the positive air pressure releases the seed from the teeth. In an example implementation, the wheel includes many individual mechanical modules that are linked together to form the wheel.
Claims
1. An agricultural seed planter comprising: a plurality of mechanical modules arranged around a center to form a planting wheel, each of the mechanical modules including: a tooth for injecting a seed into the soil, the tooth including a hole axial to the length of the tooth; and a pressure generator coupled to the tooth and configured to generate positive or negative pressure to control a position of the seed when the seed is received by the tooth; a frame coupled to the planting wheel; and at least one gauge wheel coupled to the frame.
2. The agricultural seed planter of claim 1, wherein the pressure generator includes a cylinder or a bellow device.
3. The agricultural seed planter of claim 1, further comprising: a cam coupled to the frame and to the plurality of mechanical modules, the cam being configured to actuate each pressure generator of the plurality of mechanical modules to generate positive and/or negative pressure.
4. The agricultural seed planter of claim 3, wherein each pressure generator of the plurality of mechanical modules is a bellow device, wherein each bellow device is configured to expand or compress in response to being actuated by the cam.
5. The agricultural seed planter of claim 3, wherein the cam actuates each pressure generator of the plurality of mechanical modules as the planting wheel rotates.
6. The agricultural seed planter of claim 1, wherein the generated positive pressure controls the position of the seed by discharging the seed from the tooth, and wherein the generated negative pressure controls the position of the seed by causing the seed to stick to the tooth.
7. The agricultural seed planter of claim 1, wherein the generated positive pressure prevents buildup of soil in the hole of the tooth.
8. The agricultural seed planter of claim 1, further comprising: a sensor coupled to the plurality of mechanical modules and configured to determine whether the seed is present in the tooth.
9. The agricultural seed planter of claim 1, wherein the seed is received in a recess of the tooth.
10. The agricultural seed planter of claim 1, wherein a diameter of the planting wheel is adjustable from a first diameter to a second diameter, the first diameter being greater than the second diameter.
11. The agricultural seed planter of claim 10, wherein a distance between consecutive teeth of the plurality of mechanical modules is smaller when the planting wheel is adjusted to the first diameter compared to when the planting wheel is adjusted to the second diameter.
12. The agricultural seed planter of claim 1, wherein a distance between consecutive teeth of the plurality of mechanical modules determines a separation between seeds when the seeds are injected into the soil.
13. The agricultural seed planter of claim 1, further comprising: a seed chamber coupled to the planting wheel and to the frame.
14. The agricultural seed planter of claim 13, wherein each of the plurality of mechanical modules further includes: a retractable tooth filler configured to be in at least in one of a first position or a second position, wherein a distance between the retractable tooth filler and the tooth is smaller in the first position when compared to the second position; and wherein each retractable tooth filler of a first set of mechanical modules in the plurality of mechanical modules is positioned in the first position, and each retractable tooth filler of a second set of mechanical modules in the plurality of mechanical modules is in the second position.
15. The agricultural seed planter of claim 14, wherein each tooth of the first set of mechanical modules is positioned in seed chamber and each tooth in the second set of mechanical modules is positioned outside the seed chamber.
16. The agricultural seed planter of claim 13, wherein the seed chamber includes guides for creating a track where at least one tooth of the plurality of mechanical modules moves along the track as the planting wheel rotates.
17. The agricultural seed planter of claim 1, further comprising: a cam coupled to the frame and to the plurality of mechanical modules, the cam being configured to actuate each retractable tooth filler in the plurality of mechanical modules to be placed in the first position or the second position.
18. The agricultural seed planter of claim 1, wherein the at least one gauge wheel elevates the frame such that a depth of injection of seed into the soil is based at least in part on an elevated distance of the frame.
19. The agricultural seed planter of claim 1, wherein the at least one gauge wheel reduces a weight of the planting wheel on the soil.
20. An agricultural planter comprising: a plurality of agricultural seed planters, wherein a respective agricultural seed planter in the plurality of agricultural seed planters includes discrete teeth arranged on a periphery of the respective agricultural seed planter, each of the discrete teeth having a hole axial to a length of the tooth for communicating fluid pressure through the tooth.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The foregoing and other advantages of the present disclosure will become apparent upon reading the following detailed description and upon reference to the drawings.
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[0028] While the present disclosure is susceptible to various modifications and alternative forms, specific implementations have been shown by way of example in the drawings and will be described in detail herein. It should be understood, however, that the present disclosure is not intended to be limited to the particular forms disclosed. Rather, the present disclosure is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the present disclosure as defined by the appended claims.
DETAILED DESCRIPTION
[0029] Embodiments of the present disclosure provide an agricultural planter that can be pulled along farmland by an individual. The planter can automatically plant seeds while being pulled along the farmland. The planter can be attached to an animal (e.g., an ox) or can be attached to a vehicle (e.g., a tractor). The planter can enable sustainable agriculture when an individual is pulling the planter long the farmland because, in some implementations, the planter operates without energy from burning fossil fuels or any other inputted energy apart from the pulling force from the individual. Although pulling is provided herein as an example, in some implementations, a pushing force can be applied to agricultural planters provided in the present disclosure.
[0030]
[0031] The agricultural seed planter 102 includes a planting wheel 116, a seed chamber or hopper 106, a frame 114, and in some implementations, a handle 111 coupled to the frame 114. The handle 111 includes a structural member 112 that couples to the frame 114 and an ergonomic interface 110 that allows the person 101 to pull the agricultural seed planter 102. In some implementations, the ergonomic interface 110 can facilitate connecting the agricultural seed planer 102 to a vehicle or an animal. The seed chamber 106 is also coupled to the frame 114 so that as the agricultural seed planter 102 moves, the seed chamber 106 remains in the same position relative to the position of the frame 114.
[0032] In some implementations, the frame 114 is coupled to one or more gauge wheels 108.
[0033] The planting wheel 116 includes a plurality of fingers or teeth 120 spaced around a periphery of the planting wheel 116. The teeth 120 are configured to deposit seed in the soil 104 as the planting wheel 116 rotates or travels in a forward motion along the soil 104. In some implementations, the teeth 120 are positioned so as to achieve an optimal spacing of seeds, thus, depending on a desired spacing, the location of the teeth 120 can be adjusted, thus affecting a diameter of the planting wheel 116. The diameter of the planting wheel can range from 36 inches to 96 inches, for example. In some implementations, a smaller diameter planting wheel 116 injects seed with larger separation than a larger diameter planting wheel 116. The planting wheel 116 can include a plurality of pressure generators coupled to the teeth 120. The pressure generators can be cylinders or bellow devices. As examples, two bellow devices 130 are provided in
[0034] While the spacing or distance between the teeth 120 are shown as being fixed, in some implementations, the spacing or distance can be expanded or contracted in real time as the planter 102 is moved across the field. In such implementations, the wheel 116 includes a planar linkage folding mechanism that expands and contracts like a planar folding linkage first proposed by Chuck Hoberman. The linkage arms which fold radially are sized and spaced so that the distance between the teeth can be varied to accommodate different seed population requirements, which are well known to those familiar with the agricultural planting art. An example of constructing a radially foldable planar linkage can be seen in www.sciencedirect.com/science/article/pii/S0020768307000923, whose contents are incorporated herein in their entirety. It will be appreciated that these concepts are already known to the skilled person, so the citation to this article is only to demonstrate awareness in the art as to how to implement the mechanism and applying it to the wheel 116 in the present disclosure.
[0035]
[0036] Between each of the teeth 120 there is a retractable tooth filler 118. The retractable tooth filler 118 fills the gap between the teeth 120 so that there is a smooth continuous surface present when the teeth 120 pass through the seed chamber 106 as the planting wheel 116 rotates. For example, the tooth fillers 118a and 118b are flush with the tooth 120a. The tooth filler 118c is shown to be retracting from the tooth 120c as the tooth 120c is moving towards the soil 104. Similarly, the tooth filler 118d is shown to be extending towards the periphery of the planting wheel 116 to create a smooth surface for adjacent teeth 120 prior to the adjacent teeth 120 entering the seed chamber 106. The seed chamber 106 includes guides 122 such that the tooth fillers 118 and the teeth 120 are positioned between the guides 122 when passing through the seed chamber 106. The guides 122 essentially create a track for the teeth 120 and tooth fillers 118 to follow. At any given point, while the planting wheel 116 is in operation, some tooth fillers 118 will be fully extended toward adjacent teeth 120, some tooth fillers 118 will be fully retracted from adjacent teeth 120, and some tooth fillers 118 will be in the process of being extended toward or retracted from adjacent teeth 120. Tooth fillers adjacent to teeth 120 in the seed chamber are fully extended, and tooth fillers adjacent to teeth 120 interfacing the soil 104 are fully retracted.
[0037] Referring to
[0038] In some implementations, the rear gauge wheel 108 of the two gauge wheels 108 (shown in
[0039] In some implementations, the planting wheel 116 is composed of multiple mechanical modules (e.g., mechanical modules 416, 418 of
[0040] A set of cams 406, 408 and 410 are provided in the agricultural seed planter 102. A first set of cams 406 and 410 control bellow devices (e.g., the bellow device 130 of
[0041]
[0042] The mechanical modules 416 and 418 have bellow devices 130j and 130h, respectively, that are coupled to the teeth 120j and 120h, respectively. The bellow device 130j is controlled by the mechanical module 418, and the bellow device 130h is controlled by an adjacent mechanical module that is not shown. The mechanical module 416 controls an adjacent bellow device that is not shown.
[0043] The mechanical module 418 includes a tooth filler 118h that is shown in a retracted position in
[0044] In some implementations, the bellow devices 130h and 130j are positioned concentric with the teeth 120h and 120j, respectively. The bellow devices 130h and 130j allows transmission of positive or negative air pressure to the teeth 120h and 120j. For simplicity and clarity in description, the bellow device 130j is referred to here, but a similar description can be provided for the bellow device 130h. The bellow device 130j on one end is connected to the tooth 120j. The interface 606 provides a structure for the bellow device 130j to be secured to the rigid member 624j such that the positive or negative air pressure can be communicated to the tooth 120j. The rigid member 624j includes a curved member 604j and a portion 602j for interlocking with an adjacent mechanical module (not shown).
[0045] The bellow device 130j is controlled by the mechanical module 418. The bellow device 130j is connected to a bellow actuation linkage 616h. The linkage 616h allows the bellow device 130j to be compressed and decompressed with approximately linear motion. A flat portion 618h connected to the linkage 616h compresses and decompresses the bellow device 130j, preventing the bellow device 130j from pinching. The linkage 616h pivots about the rigid member 624h at pivot points 615h. Although the linkage 616h includes two different arms with two pivot points 615h, in some implementations, the linkage 616h can include one or more pivot points 615 with one or more respective arms. In some implementations, an air cylinder can be used in place of the bellow device 130j. The bellow actuation linkage 616h is connected to an actuation rod 608h, which is then connected to another actuation link 610h. The actuation link 610h includes a roller follower device 611h at one end and the other end having a pivot point 609h. This follower device 611h rolls against the cam 410.
[0046] As the planting wheel 116 (
[0047] The continuous negative pressure from the bellow device 130j continues until the tooth 120j is just about to reach the maximum bottom point where the tooth 120j is deepest in the soil 104 (
[0048] The curved member 604j provides a larger surface area compared to the tooth 120j so that in some implementations, the curved member 604j rests upon the soil 104 (
[0049] The mechanical module 416 has similar components to the mechanical module 418. In some implementations, the mechanical module 418 is substantially a mirror image of the mechanical module 416 when viewed from the sagittal plane of the planting wheel 116. Both the mechanical modules 416 and 418 share the same cam 408 for actuating tooth fillers 118h and 118j (see
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[0054] Referring back to
[0055] Therefore, the cams 410 and 406 have irregular shapes (e.g., ovoid) and are not circular. The cams 410 and 406 provide a show retraction of bellow devices 130 to maintain the negative air pressure for a longer time period when compared to the positive air pressure. The positive air pressure is used to inject seed into the soil 104 and also prevent soil buildup while the teeth 120 leaves the soil 104. The air being released from the teeth 120 prevent soil from building up at the tips of the teeth 120. In some implementations, a series of brushes can be positioned to clean soil off of the teeth before entering the seed chamber 106. In some implementations, the series of brushes can be driven so that the brushes rotate so enhance cleaning the teeth 120 before the teeth 120 enter into the seed chamber.
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[0058] Although the tooth 120 as depicted in various implementations is shown to extend orthogonally from the periphery of the planting wheel 116. In some implementations, the tooth 120 can be provided at an angle such that a radial line drawn from the center 128 (
[0059] Although only one agricultural seed planter is discussed herein, two or more agricultural seed planters can be joined together in parallel to plant seeds in rows. For example, the ergonomic interface of two or more agricultural seed planters can be linked together so that the different agricultural seed planters can be pulled or driven in unison to plant seeds in parallel. For example, two or three or four or five or six or seven or eight or nine or ten or eleven or twelve or thirteen or fourteen or fifteen or sixteen or seventeen or eighteen or nineteen or twenty seed planters can be linked together and moved together as a single unit to seed the same number of rows. As the number of planters increases, the moving force will increase but not linearly with each additional planter. While one or two planters can be moved by a single human, for example, when a larger number of planters are linked together, one or more draft horses or similar animals can be employed to move all of the planters down the rows on a field.
[0060] Embodiments of the present disclosure provide a purely mechanical agricultural seed planter. The mechanical agricultural seed planter has a built-in seed meter. That is, seed is injected based on separation between the teeth, and each teeth punctures the soil to a specific depth thus reducing erratic seed depths between adjacently planted seeds. The teeth allow seed to be injected into the soil without having to till the soil. Thus, the agricultural seed planter combines both functions of opening space for seed to be injected into the ground and also a spacing for seeds being planted. Thus, the agricultural seed planter itself is a seed meter. Conventional planters, on the other hand, have opener devices that are separate from meter devices.
[0061] A reason why a combined opener device-seed meter functionality is valuable is because one of the hardest problems to solve is how to get seed onto the end of a planter's tooth at high speed. Most farmers will not want to plant slower than 5 miles per hour. In recent years, the trend is to plant at higher and higher speeds, so as to plant as much of the crop as possible in as small of a window as possible when soil conditions are optimal. The beauty of making the entire opener device act as the seed meter is that having a large diameter slows down angular velocity of the individual teeth as the seed gets sucked onto the individual teeth. The slower angular velocity makes it easier to get the seed onto the end of the tooth. By being purely mechanical, agricultural seed planters, in some embodiments, free farmers of the burden of having to try to maintain the operation of complex electronic and hydraulic systems. Furthermore, a modular design of agricultural seed planters as provided herein are easier to service.
[0062] One or more elements or aspects or steps, or any portion(s) thereof, from one or more of any of claims 1-20 below can be combined with one or more elements or aspects or steps, or any portion(s) thereof, from one or more of any of the other claims 1-20 or combinations thereof, to form one or more additional implementations and/or claims of the present disclosure.
[0063] While the present disclosure has been described with reference to one or more particular embodiments or implementations, those skilled in the art will recognize that many changes may be made thereto without departing from the spirit and scope of the present disclosure. Each of these implementations and obvious variations thereof is contemplated as falling within the spirit and scope of the present disclosure. It is also contemplated that additional implementations according to aspects of the present disclosure may combine any number of features from any of the implementations described herein.