Agricultural Product Delivery Applicator Having A Hydraulic Circuit For Controlling A Metering System For The Product
20210155419 · 2021-05-27
Inventors
Cpc classification
B65G53/14
PERFORMING OPERATIONS; TRANSPORTING
A01C15/005
HUMAN NECESSITIES
International classification
B65G53/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An agricultural product delivery applicator for delivering particulate product to a field. The applicator includes a bin having a first chamber to hold a first product, a second chamber to hold a second product, and a third chamber to hold a third product. The applicator further includes a pneumatic conveying system having an airflow source to provide an airflow, a delivery line operably connected to the airflow source and to the bin, and an outlet coupled to the delivery line. A metering system is operably connected between the supply compartment and the pneumatic conveying system. The metering system meters product with the airflow to result in a mixed flow of airflow and product. The metering system includes a novel hydraulic circuit for helping to meter the product.
Claims
1. An agricultural product delivery applicator for delivering particulate product to a field, the applicator comprising: a bin having a first chamber to hold a first product, a second chamber to hold a second product, and a third chamber to hold a third product; a pneumatic conveying system having an airflow source to provide an airflow, a delivery line operably connected to the airflow source and to the bin, and an outlet coupled to the delivery line; and a metering system operably connected between the supply compartment and the pneumatic conveying system, the metering system to meter product with the airflow to result in a mixed flow of airflow and product, the metering system comprising: a hydraulic circuit; a first set of metering devices operably connecting the first chamber and the delivery line, the first set of metering devices including a first metering wheel and a first hydraulic motor operating the first metering wheel; a second set of metering devices operably connecting the second chamber and the delivery line, the second set of metering devices including a second metering wheel and a second hydraulic motor operating the second metering wheel, the second set of metering devices being hydraulically coupled in series with the first set of metering devices; and a third set of metering devices operably connecting the third chamber and the delivery line, the third set of metering devices including a third metering wheel and a third hydraulic motor operating the third metering wheel, the third set of metering devices being hydraulically coupled in parallel with the series coupled first set of metering devices and second set of metering devices.
2. The applicator of claim 1, wherein the first hydraulic motor, the second hydraulic motor, and the third hydraulic motor provide equal maximum displacements.
3. The applicator of claim 1, wherein the bin further includes a fourth chamber to hold a fourth product, and wherein the metering system further includes a fourth set of metering devices operably connecting the fourth chamber and the delivery line, the fourth set of metering devices including a fourth metering wheel and a fourth hydraulic motor operating the fourth metering wheel, the fourth set of metering devices hydraulically coupled in parallel with the third set of metering devices and with the series coupled first set of metering devices and second set of metering devices.
4. The applicator of claim 3, wherein the first hydraulic motor and the second hydraulic motor provide equal maximum displacements.
5. The applicator of claim 4, wherein the third hydraulic motor and the second hydraulic motor provide equal maximum displacements.
6. The applicator of claim 5, wherein the fourth hydraulic motor and the third hydraulic motor have different maximum displacements.
7. The applicator of claim 3, wherein the hydraulic circuit further includes a first bypass control associated with the first set of metering devices and a second bypass control associated with the second set of metering devices.
8. The applicator of claim 7, wherein the first bypass control allows at least a portion of a hydraulic fluid used by the second set of metering devices to bypass the first set of metering devices when the desired speed of the second hydraulic motor is greater than the first hydraulic motor, and wherein the second bypass control allows at least a portion of a hydraulic fluid used by the first set of metering devices to bypass the second set of metering devices when the desired speed of the first hydraulic motor is greater than the second hydraulic motor.
9. The applicator of claim 1, wherein the hydraulic circuit further includes a first bypass control sub-circuit associated with the first set of metering devices and a second bypass control sub-circuit associated with the second set of metering devices.
10. The applicator of claim 9, wherein the first bypass control sub-circuit allows at least a portion of a hydraulic fluid used by the second set of metering devices to bypass the first set of metering devices when the desired speed of the second hydraulic motor is greater than the first hydraulic motor, and wherein the second bypass control sub-circuit allows at least a portion of a hydraulic fluid used by the first set of metering devices to bypass the second set of metering devices when the desired speed of the first hydraulic motor is greater than the second hydraulic motor.
11. The applicator of claim 1, wherein the first set of metering devices includes a first plurality of metering wheels and a first plurality of hydraulic motors, each one of the first plurality of metering wheels is associated with a respective each one of the first plurality of hydraulic motors, the first plurality of hydraulic motors being hydraulically coupled in parallel and includes the first hydraulic motor; wherein the second set of metering devices includes a second plurality of metering wheels and a second plurality of hydraulic motors, each one of the second plurality of metering wheels is associated with a respective each one of the second plurality of hydraulic motors, the second plurality of hydraulic motors being hydraulically coupled in parallel and includes the second hydraulic motor; and wherein the third set of metering devices includes a third plurality of metering wheels and a third plurality of hydraulic motors, each one of the third plurality of metering wheels is associated with a respective each one of the third plurality of hydraulic motors, the third plurality of hydraulic motors being hydraulically coupled in parallel and includes the third hydraulic motor;
12. A metering system operably connected between a supply compartment of an agricultural product delivery applicator and a conveying system of the applicator, the applicator include a bin having a first chamber to hold a first product, a second chamber to hold a second product, and a third chamber to hold a third product, the metering system comprising: a hydraulic circuit; a first set of metering devices operably connecting the first chamber and the conveying system, the first set of metering devices including a first metering wheel and a first hydraulic motor operating the first metering wheel; a second set of metering devices operably connecting the second chamber and the conveying system, the second set of metering devices including a second metering wheel and a second hydraulic motor operating the second metering wheel, the second set of metering devices being hydraulically coupled in series with the first set of metering devices; and a third set of metering devices operably connecting the third chamber and the conveying system, the third set of metering devices including a third metering wheel and a third hydraulic motor operating the third metering wheel, the third set of metering devices being hydraulically coupled in parallel with the series coupled first set of metering devices and second set of metering devices.
13. The metering system of claim 12, wherein the bin further includes a fourth chamber to hold a fourth product, and wherein the metering system further includes a fourth set of metering devices operably connecting the fourth chamber and the conveying system, the fourth set of metering devices including a fourth metering wheel and a fourth hydraulic motor operating the fourth metering wheel, the fourth set of metering devices hydraulically coupled in parallel with the third set of metering devices and with the series coupled first set of metering devices and second set of metering devices.
14. The metering system of claim 13, wherein the first hydraulic motor and the second hydraulic motor provide equal maximum displacements, wherein the third hydraulic motor and the second hydraulic motor provide equal maximum displacements, and wherein the fourth hydraulic motor and the third hydraulic motor have different maximum displacements.
15. The metering system of claim 14, wherein the hydraulic circuit further includes a first bypass control associated with the first set of metering devices and a second bypass control associated with the second set of metering devices.
16. The metering system of claim 15, wherein the first bypass control allows at least a portion of a hydraulic fluid used by the second set of metering devices to bypass the first set of metering devices when the desired speed of the second hydraulic motor is greater than the first hydraulic motor, and wherein the second bypass control allows at least a portion of a hydraulic fluid used by the first set of metering devices to bypass the second set of metering devices when the desired speed of the first hydraulic motor is greater than the second hydraulic motor.
17. The metering system of claim 12, wherein the hydraulic circuit further includes a first bypass control sub-circuit associated with the first set of metering devices and a second bypass control sub-circuit associated with the second set of metering devices.
18. The metering system of claim 17, wherein the first bypass control sub-circuit allows at least a portion of a hydraulic fluid used by the second set of metering devices to bypass the first set of metering devices when the desired speed of the second hydraulic motor is greater than the first hydraulic motor, and wherein the second bypass control sub-circuit allows at least a portion of a hydraulic fluid used by the first set of metering devices to bypass the second set of metering devices when the desired speed of the first hydraulic motor is greater than the second hydraulic motor.
19. The metering system of claim 12, wherein the first set of metering devices includes a first plurality of metering wheels and a first plurality of hydraulic motors, each one of the first plurality of metering wheels is associated with a respective each one of the first plurality of hydraulic motors, the first plurality of hydraulic motors being hydraulically coupled in parallel and includes the first hydraulic motor; wherein the second set of metering devices includes a second plurality of metering wheels and a second plurality of hydraulic motors, each one of the second plurality of metering wheels is associated with a respective each one of the second plurality of hydraulic motors, the second plurality of hydraulic motors being hydraulically coupled in parallel and includes the second hydraulic motor; and wherein the third set of metering devices includes a third plurality of metering wheels and a third plurality of hydraulic motors, each one of the third plurality of metering wheels is associated with a respective each one of the third plurality of hydraulic motors, the third plurality of hydraulic motors being hydraulically coupled in parallel and includes the third hydraulic motor;
Description
DETAILED DESCRIPTION OF THE INVENTION
[0012] Preferred exemplary embodiments of the invention are illustrated in the accompanying drawings in which like reference numerals represent like parts throughout. In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
[0023] An agricultural application implement 10 (or simply implement 10) incorporating aspects of the invention is shown in
[0024] The applicator 15 includes left and right laterally extending booms 30 and 35, respectively, extending from a mid-implement location 40. Left and right are referred to herein as viewed by the operator housed in the operator cab 45. The mid-implement location 40 refers to a mounting of the booms 30 and 35 between the front and rear axles 50 and 55, respectively, of the transport unit 20. The laterally extending booms 30 and 35 include a support structure (not shown for simplicity) and can be pivoted to a stowed position close to the implement 10 for storage or transport. Each boom 30 and 35 includes a plurality of boom conduits or tubes (discussed further below) terminating at respective outboard ends in in the applicator 15. The outboard ends of the booms 30 and 35 include a spreading outlet or nozzle. In the exemplary embodiment shown, boom 35 includes twelve outlets 60.
[0025] The pneumatic conveying system 25 also includes a laterally extending offset boom 80. The offset boom 80, which may also be referred to as a secondary boom, is mounted at a rearward location 85. The rearward location 85 refers to a mount of the offset boom 80 behind the rear axis 55. The offset boom includes six rear outlets 90, The offset boom 80 in combination with the booms 30 and 35 provide complete coverage across the width of applicator 15.
[0026] The shown transport unit 20 is self-propelled by an engine in an engine compartment 100 and includes the operator cab 45. For the shown construction, a bin 105 includes compartments (or chambers) 110, 112, 114 and 116 for carrying particulate material to be distributed to and disbursed by the applicator 15. One or more of the compartments, e.g., compartments 110 and 116, can supply micro-nutrients or other materials and can include a cover, respectively. The supply of particulate material in compartments 110-116 can be replenished periodically.
[0027] Before proceeding further, some aspects of the applicator 15 can be a matter of design choice to someone skilled in the art. For example, the number, arrangement, and design of the compartments 110-116 and outlets 60 and 90 can vary. The applicator 15 is illustrative of the types of equipment on which the pneumatic conveying system 100 can be used; however, it should be understood that the pneumatic conveying system 100 may, of course, be employed in conjunction with other agricultural equipment such as tillage, seeding, or planting devices and is useful in distributing particulate material other than fertilizer.
[0028] The shown construction includes compartments 110-116 of the bin 105 being disposed above portions of the pneumatic conveying system 25.
[0029] To collect and drive the particulate material along the delivery lines 120, 125 and 127, are one or more pressurized air flow sources. For the shown construction, blowers 170 and 175 are operably connected to the plenums 130 and 135. The air flow from the blowers 170 and 175 is directed from the blowers 170 and 175 into the plenums 130 and 135, then the supply lines 150, 155, and 157, through the distributor assemblies 140, 145, and 147, into the distribution lines 160, 165, and 167, and out the outlets 60 and 90. As the airflow passes through the supply lines 150, 155, and 157, a metering system 180 (
[0030] Referring now to
[0031] In the exemplary embodiment of
[0032] Each metering device 200 includes a metering wheel 215, a motor 220, and a shaft 225 connecting each metering wheel 215 to its respective motor 220. Further discussion regarding exemplary metering wheels 215 can be found in US Patent Application Publication No. 2019/0021215 A1, the content of which is incorporated herein by reference.
[0033] The shown motors 220 in
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[0035] The shown construction uses two different sizes of motors 220 between the twenty-inch metering wheels 215B and the twelve-inch metering wheels 215C. The motor size for the twelve-inch metering wheels 2154 can then used for the four-inch metering wheels 215A and 215D as well. However, the low torque required for the four-inch metering wheels 215A and 215D relative to the size of the twelve-inch metering wheels 215C allows the motors for each of the four-inch metering wheels 215A and 215D to be operated in series. This results in efficient load sharing, good efficiency, and an economical reuse of motor sizes. The shown construction also helps reduce cost, reduce oil, and reduce heat compared to other possible solutions such as solutions disclosed in the background section above. The shown construction is also modular. Any combination of the chambers (with appropriate metering wheels, motors, and valve banks) may be used with good efficiency. The configuration of a modular arrangement that mixes series and parallel architecture through the use of load sensing and bypass valves to give efficient performance at a reasonable cost, hydraulic pressure, and hydraulic flow.
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[0041] Each controller 335-360 also includes a conditioning circuit 385 that interfaces sensor signals and/or other input (e.g., external communication) to the controller 335-360. Conditioning circuit 385 filters and buffers the signals to eliminate noise, and may include sample-and-hold sub-circuits as well as analog-to-digital converters for processing analog sensor signals.
[0042] In addition, each controller 335-360 includes a driver circuit 390 that controls the application of power to actuators and/or other output (e.g., external communication), The processor 370, memory 375, conditioning circuit 385, driver circuit 390, and communications processor 380 are all coupled together by control/data/address bus 395 within each controller 335-360.
[0043] The memory 375 can include a RAM and a ROM. The RAM is used to store working variables required by the processor 370. The ROM contains programmed instructions that control the operation of the processor 370. It is envisioned that one or more elements (e.g., the processor 370 and the memory 375) can be combined as is well known in the art.
[0044] As a more detailed example, the hydraulic controller 315 receives inputs from the Product Delivery Controller as to the desired application rate of each product. The desired application rate may be a function of items such as inputs entered in the I/O Controller, ground speed and location provided by the Positioning Controller, and engine speed provided by the Engine Controller. The hydraulics controller commands the pump and hydraulic valves to power the metering motors so that the metering wheels can turn at a rate that supplies each product according to its desired application rate. The hydraulics controller also monitors the performance of the hydraulic system. If limitations of the system design or errors in the system prevent the hydraulics from delivering each product at its desired application rate, the hydraulics controller will communicate that to the Product Delivery Controller, which will notify the operator via the Communication Controller and make any other adjustments to the behavior of the machine that are necessary.
[0045] Although the best mode contemplated by the inventors of carrying out the present invention is disclosed above, practice of the above invention is not limited thereto. It will be manifest that various additions, modifications, and rearrangements of the features of the present invention may be made without deviating from the spirit and the scope of the underlying inventive concept.