WINDROWER WITH CONTROLLER TO AUTOMATICALLY DEFINE CONDITIONER SETTINGS
20230038553 · 2023-02-09
Assignee
Inventors
Cpc classification
A01D82/00
HUMAN NECESSITIES
A01D43/10
HUMAN NECESSITIES
International classification
A01D41/127
HUMAN NECESSITIES
A01D43/10
HUMAN NECESSITIES
Abstract
A windrower system includes: a windrower including: a chassis; a cutter carried by the chassis and configured to cut crop material; and an adjustable conditioner carried by the chassis behind the cutter and configured to condition crop material cut by the cutter; and a controller operably coupled to the conditioner and including a memory. The controller is configured to: receive a crop type signal corresponding to a crop type; recall at least one conditioner operating parameter from the memory based at least partially on the received crop type signal; and output a conditioner adjustment signal to the conditioner to adjust the conditioner to the recalled at least one conditioner operating parameter.
Claims
1. A windrower system, comprising: a windrower comprising: a chassis; a cutter carried by the chassis and configured to cut crop material; and an adjustable conditioner carried by the chassis behind the cutter and configured to condition crop material cut by the cutter; and a controller operably coupled to the conditioner and comprising a memory, the controller being configured to: receive a crop type signal corresponding to a crop type; recall at least one conditioner operating parameter from the memory based at least partially on the received crop type signal; and output a conditioner adjustment signal to the conditioner to adjust the conditioner to the recalled at least one conditioner operating parameter.
2. The windrower system of claim 1, wherein the conditioner comprises a pair of conditioning rolls defining a gap therebetween.
3. The windrower system of claim 2, wherein the at least one conditioner operating parameter comprises at least one of a defined gap between the conditioning rolls or a defined pressure exerted by the conditioning rolls.
4. The windrower system of claim 1, wherein the controller is further configured to receive at least one crop characteristic signal corresponding to at least one characteristic of crop material, wherein the recalled at least one conditioner operating parameter is also based on the at least one crop characteristic signal.
5. The windrower system of claim 4, wherein the at least one characteristic of crop material comprises at least one of a stem diameter of crop material or a height of crop material.
6. The windrower system of claim 1, wherein the controller is further configured to receive a conditioning level signal corresponding to a conditioning characteristic of conditioned crop material, wherein the recalled at least one conditioner operating parameter is also based on the conditioning level signal.
7. The windrower system of claim 6, wherein the conditioning characteristic comprises at least one of drying time of conditioned crop material or damage to conditioned crop material.
8. The windrower system of claim 1, further comprising a display operably coupled to the controller, the display being configured to output the crop type signal to the controller.
9. The windrower system of claim 8, wherein the display is carried by the chassis.
10. The windrower system of claim 1, wherein the controller is configured to recall the at least one conditioner operating parameter from the memory based solely on the received crop type signal.
11. A method of adjusting a conditioner of a windrower system, the conditioner being configured to condition crop material cut by a cutter and operably coupled to a controller comprising a memory, the method being performed by the controller and comprising: receiving a crop type signal corresponding to a crop type; recalling at least one conditioner operating parameter from the memory based at least partially on the received crop type signal; and outputting a conditioner adjustment signal to the conditioner to adjust the conditioner to the recalled at least one conditioner operating parameter.
12. The method of claim 11, wherein the conditioner comprises a pair of conditioning rolls defining a gap therebetween.
13. The method of claim 12, wherein the at least one conditioner operating parameter comprises at least one of a defined gap between the conditioning rolls or a defined pressure exerted by the conditioning rolls.
14. The method of claim 11, further comprising receiving at least one crop characteristic signal corresponding to at least one characteristic of crop material, wherein the recalled at least one conditioner operating parameter is also based on the at least one crop characteristic signal.
15. The method of claim 14, wherein the at least one characteristic of crop material comprises at least one of a stem diameter of crop material or a height of crop material.
16. The method of claim 11, further comprising receiving a conditioning level signal corresponding to a conditioning characteristic of conditioned crop material, wherein the recalled at least one conditioner operating parameter is also based on the conditioning level signal.
17. The method of claim 16, wherein the conditioning characteristic comprises at least one of drying time of conditioned crop material or damage to conditioned crop material.
18. The method of claim 11, wherein the windrower system comprises a display operably coupled to the controller, the display being configured to output the crop type signal to the controller.
19. The method of claim 11, wherein the recalling the at least one conditioner operating parameter from the memory is based solely on the received crop type signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] For the purpose of illustration, there are shown in the drawings certain embodiments of the present invention. It should be understood, however, that the invention is not limited to the precise arrangements, dimensions, and instruments shown. Like numerals indicate like elements throughout the drawings. In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
[0020] Referring now to the drawings, and more particular to
[0021] Crop material is severed from the ground by the cutter 120 whereupon it is directed toward and engaged by a conditioner 130. The cutter 120 may comprise a plurality of rotary disc cutter modules 121 arranged so that adjacent pairs of modules 121 counter-rotate. Adjacent pairs of the modules 121 rotate so that the modules 121 converge crop material therebetween while other adjacent pairs of modules 121 divergingly rotate so that cut crop is directed away from the space between the modules 121. Consequently, the crop material being directed toward the conditioner 130 is concentrated into a number of crop streams generally centered between pairs of convergingly rotating disc cutter modules 121 and less dense in the area downstream of divergingly rotating disc cutter modules 121.
[0022] The conditioner 130 is adjustable and may comprise a pair of transversely elongate conditioning rolls 131, 132 as shown, or it may comprise a flail-type conditioner in which crop passes between a single roll with radially arranged flails and a closely proximate adjacent surface in order to crush the crop material. The conditioning rolls 131, 132 are closely spaced apart on parallel, transverse axes such that a gap is created therebetween through which crop material passes. The crop material is then ejected rearwardly from the conditioner rolls 131, 132 in a plurality of airborne streams along a trajectory whereupon it falls to the ground in a mat. A swathgate or swathboard 140 may be provided to allow alteration of the crop trajectory and thereby control the configuration of the resultant mat of crop material on the ground behind the windrower 100. Movement of the crop material through the conditioner 130 typically does little to laterally redistribute the individual streams of crop material, thus the mat of crop material deposited on the ground would be of non-uniform density without additional crop movement guides.
[0023] The swathboard 140 comprises a generally planar crop guide surface 141 oriented slightly above the trajectory of crop material ejected from the conditioner rolls 131, 132. The swathboard 140 may be movable so that the guide surface 141 may be angularly positioned to interact to varying degrees with the streams of crop material and thereby influence the trajectory of the crop material streams discharged from the conditioner 130. A fixed-position swathboard may also be used. In some embodiments, one or more deflectors 150 may also be included to further affect the trajectory of the discharged crop material.
[0024] In known windrowers, the operating parameters of the conditioner are generally set by the user. Users generally set the operating parameters based on their experience with a crop type and/or certain characteristics of the standing crop, such as stem diameter. If the user is not familiar with a certain crop type and/or the characteristics of the standing crop deviate from previous collection, a user may not know the most efficient operating parameters for the conditioner. The user may then be frustrated if the chosen operating parameters detrimentally affect conditioning and/or if the user seeks efficient operating parameters for the conditions and finds conflicting and/or unreliable information.
[0025] To address some of the previously described issues, and referring now to
[0026] The controller 160 may be configured to receive the crop type signal from a variety of sources. As illustrated in
[0027] When the conditioner setting menu 310 is in the basic setup mode, as illustrated in
[0028] The controller 160, after receiving the crop type signal, recalls one or more conditioner operating parameters from the memory 161 based at least partially on the received crop type signal corresponding to the crop type. For example, the controller 160 may be configured to recall the conditioner operating parameter(s) from a lookup table stored in the memory 161 that associates one or more conditioner operating parameters with a specific crop type. The lookup table may be pre-installed in the memory 161 by a manufacturer; alternatively, or in addition, the lookup table may be installed and/or edited in the memory 161 by a user. When light alfalfa is the crop type, for example, the associated conditioner operating parameters in the lookup table may be a defined gap between the conditioning rolls 131, 132 of ⅙.sup.th of an inch and/or a defined pressure exerted by the conditioning rolls 131, 132, e.g., 30% of a maximum pressure. After recalling the conditioner operating parameter(s), the controller 160 outputs a conditioner adjustment signal to the conditioner 130, e.g., the roll actuator 133, to adjust the conditioner 130, e.g., the conditioning rolls 131, 132, to the recalled conditioner operating parameter(s). For example, the roll actuator 133 may move one or both of the conditioning rolls 131, 132 so the defined gap is defined therebetween. Thus, the controller 160 may be configured to recall the conditioner operating parameter(s) from the memory 161 based solely on the received crop type signal, e.g., when in the basic setup mode. In some embodiments, the controller 160 also outputs a conditioner adjustment signal to the display 101 so the display 101 presents one or more conditioner operating parameter graphics 501, 502 presenting the recalled conditioner operating parameters. If desired, the user may consult the conditioner operating parameter graphics 501, 502 to manually adjust the conditioner 130. It should be appreciated that other conditioner operating parameters may be adjusted, including but not limited to a rotation speed of the conditioner 130.
[0029] In some embodiments, the controller 160 is further configured to receive at least one crop characteristic signal corresponding to at least one characteristic of crop material, with the recalled conditioner operating parameter(s) also being based on the crop characteristic signal(s). The controller 160 may also be configured to receive a conditioning level signal corresponding to a conditioning characteristic of conditioned crop material, with the recalled conditioner operating parameter(s) also being based on the conditioning level signal. Referring specifically now to
[0030] From the foregoing, it should be appreciated that the windrower system 10 provided according to the present disclosure has a controller 160 with a memory 161 that can be used to adjust conditioner operating parameters based on the type of crop being conditioned, as well as other parameters. The conditioner operating parameters may be adjusted automatically by the system 10 or manually by a user consulting the conditioner operating parameter(s). The conditioner operating parameter(s) may be loaded into the memory 161 by a manufacturer, who may have a significant amount of data to determine the optimal conditioner operating parameters for specific crop types and other parameters. Thus, the windrower system 10 provided according to the present disclosure alleviates the need for a user to remember how the conditioner 130 should be set for specific crop types and other parameters.
[0031] Referring now to
[0032] It is to be understood that the steps of the method 800 are performed by the controller 160 upon loading and executing software code or instructions which are tangibly stored on a tangible computer readable medium, such as on a magnetic medium, e.g., a computer hard drive, an optical medium, e.g., an optical disc, solid-state memory, e.g., flash memory, or other storage media known in the art. Thus, any of the functionality performed by the controller 160 described herein, such as the method 800, is implemented in software code or instructions which are tangibly stored on a tangible computer readable medium. The controller 160 loads the software code or instructions via a direct interface with the computer readable medium or via a wired and/or wireless network. Upon loading and executing such software code or instructions by the controller 160, the controller 160 may perform any of the functionality of the controller 160 described herein, including any steps of the method 800 described herein.
[0033] The term “software code” or “code” used herein refers to any instructions or set of instructions that influence the operation of a computer or controller. They may exist in a computer-executable form, such as machine code, which is the set of instructions and data directly executed by a computer's central processing unit or by a controller, a human-understandable form, such as source code, which may be compiled in order to be executed by a computer's central processing unit or by a controller, or an intermediate form, such as object code, which is produced by a compiler. As used herein, the term “software code” or “code” also includes any human-understandable computer instructions or set of instructions, e.g., a script, that may be executed on the fly with the aid of an interpreter executed by a computer's central processing unit or by a controller.
[0034] These and other advantages of the present invention will be apparent to those skilled in the art from the foregoing specification. Accordingly, it is to be recognized by those skilled in the art that changes or modifications may be made to the above-described embodiments without departing from the broad inventive concepts of the invention. It is to be understood that this invention is not limited to the particular embodiments described herein, but is intended to include all changes and modifications that are within the scope and spirit of the invention.