Motion control method, motion control system, and motion control program
The motion control system adjusts the harvesting unit's posture based on waste and work object positions to prevent entanglement and ensure complete coverage, addressing efficiency issues in conventional harvesting operations.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-02-21
- Publication Date
- 2026-04-08
AI Technical Summary
Conventional work vehicles face efficiency issues in harvesting operations due to the lifting and lowering movements of the harvesting unit, which can lead to entanglement with discharged straw and under-harvested areas, especially in non-perpendicular fields.
A motion control system that adjusts the posture of the harvesting unit based on the position of waste and work object, using a portable operation terminal to set paths and control the combine harvester's movements, ensuring efficient discharge of waste while minimizing entanglement.
Improves the efficiency of harvesting operations by preventing the harvesting unit from entangling with discharged straw and ensuring complete coverage of the work area, thereby enhancing overall work efficiency.
Smart Images

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Abstract
Description
Technical Field
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[0001] The present invention relates to a technique for controlling the operation of a working unit of a work vehicle.
Background Art
[0002] Conventionally, in a field, a work vehicle (for example, a combine) that automatically travels along a preset target path is known. For example, the work vehicle performs a harvesting operation on cereal straw while automatically traveling from a start position to an end position along a target path in the field (see, for example, Patent Document 1).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0007] The motion control system according to the present invention is a system for controlling the operation of a work unit installed on a work vehicle that travels along a target path while performing a predetermined operation on a work object, and discharges the waste generated by the operation along the track of the target path. In the motion control system, the motion processing unit changes the posture of the work unit in steps based on at least one of the position of the waste and the position of the work object.
[0008] The motion control program according to the present invention is a program that controls the operation of a work unit provided on a work vehicle that travels along a target path while performing a predetermined operation on a work object, and discharges the waste generated by the operation along the track of the target path. The motion control program causes one or more processors to perform a stepwise change in the posture of the work unit based on at least one of the position of the waste and the position of the work object. [Effects of the Invention]
[0009] According to the present invention, it is possible to provide an operation control method, an operation control system, and an operation control program that can improve the work efficiency of a work unit that performs predetermined work on a work object while discharging waste generated by said work into the track. [Brief explanation of the drawing]
[0010] [Figure 1] Figure 1 is a functional block diagram showing the configuration of an automated driving system according to an embodiment of the present invention. [Figure 2] Figure 2 is an external view showing the configuration of a combine harvester according to an embodiment of the present invention. [Figure 3] Figure 3 shows an example of a target path set in a field according to an embodiment of the present invention. [Figure 4A] Figure 4A shows an example of the operation procedure of a combine harvester according to an embodiment of the present invention. [Figure 4B] Figure 4B shows an example of the operation procedure of a combine harvester according to an embodiment of the present invention. [Figure 4C] Figure 4C shows an example of the operation procedure of a combine harvester according to an embodiment of the present invention. [Figure 4D] Figure 4D shows an example of the operation procedure of a combine harvester according to an embodiment of the present invention. [Figure 5] Figure 5 shows another example of the operation procedure of a combine harvester according to an embodiment of the present invention. [Figure 6] Figure 6 shows the height of the harvesting section of a combine harvester according to an embodiment of the present invention. [Figure 7A] Figure 7A shows the configuration of the cutting height detection device for the cutting unit according to an embodiment of the present invention. [Figure 7B] Figure 7B shows the configuration of the cutting height detection device for the cutting unit according to an embodiment of the present invention. [Figure 7C] Figure 7C shows the configuration of the cutting height detection device for the cutting unit according to an embodiment of the present invention. [Figure 8] Figure 8 shows an example of a method for driving a combine harvester on a sloping field according to an embodiment of the present invention. [Figure 9] Figure 9 shows an example of the harvesting unit getting entangled with straw in a sloping field. [Figure 10] Figure 10 shows an example of a method for changing the height of the harvesting section in a sloping field according to an embodiment of the present invention. [Figure 11] Figure 11 shows an example of the harvesting unit getting entangled with straw in a sloping field. [Figure 12] Figure 12 shows an example of a method for changing the height of the harvesting section in a sloping field according to an embodiment of the present invention. [Figure 13]FIG. 13 is a flowchart showing an example of the procedure of the automatic driving process executed by the automatic driving system according to an embodiment of the present invention. [Figure 14A] FIG. 14A is a diagram showing an example of a method of tilting the cutting unit according to an embodiment of the present invention. [Figure 14B] FIG. 14B is a diagram showing an example of a method of tilting the cutting unit according to an embodiment of the present invention. [Figure 14C] FIG. 14C is a diagram showing an example of a method of tilting the cutting unit according to an embodiment of the present invention. **DETAILED DESCRIPTION OF THE INVENTION**
[0011] The following embodiments are an example of embodying the present invention and do not limit the technical scope of the present invention.
[0012] As an example of the work vehicle of the present invention, the combine 1 will be described. As shown in FIG. 1, the automatic driving system 10 according to the embodiment of the present invention includes the combine 1 and the operation terminal 3. The combine 1 and the operation terminal 3 can communicate via the communication network N1. For example, the combine 1 and the operation terminal 3 can communicate via a mobile phone line network, a packet line network, or a wireless LAN.
[0013] The combine 1 is a work vehicle that performs farming operations (an example of a predetermined operation of the present invention) such as cutting in a field. The combine 1 performs operations while traveling, and transmits the GNSS information of the GNSS antenna mounted on the combine 1, that is, the vehicle position of the combine 1, to the operation terminal 3 as measurement point data.
[0014] In addition, the combine 1 can perform automatic driving according to a preset target route. Note that the combine 1 may be configured to automatically drive in a part of the field (for example, a straight path) and manually drive in other areas (for example, a turning path). Further, the combine 1 receives various setting information from the operation terminal 3 and performs automatic driving according to the setting information.
[0015] The operating terminal 3 is a portable terminal capable of remotely controlling the combine harvester 1, and is comprised of, for example, a tablet device, a notebook computer, or a smartphone. An operating device similar to the operating terminal 3 may also be mounted on the combine harvester 1.
[0016] The operator can perform various setting operations on the control terminal 3. The control terminal 3 also displays information such as the work status and driving status of the combine harvester 1 while it is automatically moving. The operator can monitor the work status and driving status on the control terminal 3.
[0017] Figure 3 shows an example of a target path R generated for field F. For example, combine harvester 1 performs harvesting work ("circular harvesting," "reciprocal harvesting") within field F, traveling from the outer perimeter to the inner perimeter, following the target path R from the starting position S to the ending position G. Specifically, in the outer perimeter area F1 of field F, combine harvester 1 performs harvesting work while traveling along the edge of the field (outer perimeter). In the inner perimeter area F2 of field F, combine harvester 1 performs harvesting work while traveling in a straight line in the vertical direction of Figure 3, and moves between work paths by turning and traveling in a straight line without performing harvesting work in the horizontal direction.
[0018] An example of the operation procedure of combine harvester 1 is explained using Figure 4. First, as shown in Figure 4A, combine harvester 1 starts automatic travel at the starting position S and travels along the outer perimeter of the field F, harvesting the grain stalks. After threshing the harvested grain stalks, combine harvester 1 discharges straw waste (an example of discharge in this invention) from the rear of the machine to the outside. As a result, as shown in Figure 4B, the discharged straw B1 accumulates in the path of combine harvester 1, and a row of discharged straw is formed along the path where combine harvester 1 has finished harvesting. Combine harvester 1 is set to discharge the harvested straw from the grain stalks at the position of the grain stalks being harvested, and is configured to be able to determine the position, width (horizontal width of the discharged straw row), and length of the discharged straw B1. For example, the discharged straw B1 is discharged with a width narrower than the width of the machine, with the center of combine harvester 1 in the horizontal direction as the reference point.
[0019] As shown in Figure 4C, the combine harvester 1 makes two laps around the outer perimeter F1. In this case, two rows of discarded straw are formed, and a predetermined gap (a work area where discarded straw B1 does not exist) is formed between the rows of discarded straw from the first lap and the rows of discarded straw from the second lap. Note that the number of laps around the outer perimeter F1 is not limited to two; it may be one lap or three or more laps.
[0020] Once the combine harvester 1 has finished harvesting in the outer area F1, it enters the inner area F2 and begins harvesting in the inner area F2. In the inner area F2, as shown in Figure 4D, the combine harvester 1 performs harvesting while moving in a straight line in the vertical direction, and moves between work paths by turning and moving in a straight line within the outer area F1 (worked area, headland area) without performing harvesting in the horizontal direction. The combine harvester 1 performs harvesting in the inner area F2, and when it reaches the end position G, it automatically moves and ends the harvesting work.
[0021] Here, when combine harvester 1 is harvesting the inner area F2, it is necessary to pass (cross) the straw waste B1 discharged during the harvesting of the outer area F1 each time it enters the inner area F2 from the outer area F1 and each time it exits the inner area F2 to the outer area F1.
[0022] In conventional technology, for example, combine harvester 1 travels in the outer perimeter area F1 with the harvesting unit raised to a non-working height (non-working position) to prevent the harvesting unit from entangling the discharged straw B1, lowers the harvesting unit to the working height (working position) when entering the inner perimeter area F2, and raises the harvesting unit to a non-working height (non-working position) when exiting the inner perimeter area F2. As a result, if the timing of raising and lowering the harvesting unit is off, problems can arise such as areas being under-harvested or the harvesting unit entangling the discharged straw from combine harvester 1.
[0023] Furthermore, as shown in Figure 5, for example, if the shape of field F is inclined (not perpendicular) to the direction of travel (working direction) of the combine harvester 1, when the combine harvester 1 enters the inner circumference area F2 and the harvesting unit descends to the working position, harvesting of grain stalks begins on one side of the harvesting unit (right side in Figure 5), but on the other side (left side in Figure 5), a problem arises where it comes into contact with the discarded straw B1 and gets entangled with the discarded straw B1 (see Figure 9 below).
[0024] Thus, with conventional technology, a problem arises in that the efficiency of harvesting work by the harvesting unit is reduced due to the lifting and lowering movement of the harvesting unit. In contrast, the automatic driving system 10 according to this embodiment has a configuration that can improve the work efficiency of the work unit (harvesting unit, etc.) by performing predetermined work (harvesting work, etc.) on the target of work (grain stalks, etc.) while discharging the waste generated by the work (straw waste B1, etc.) into the driving track, as shown below. The specific configurations of the combine 1 and the operation terminal 3 for realizing the above configuration will be described below.
[0025] [Operating terminal 3] As shown in Figure 1, the operating terminal 3 is an information processing device comprising an operation control unit 31, a storage unit 32, an operation display unit 33, and a communication unit 34, etc. The operating terminal 3 is configured as, for example, a tablet terminal.
[0026] The communication unit 34 is a communication interface for connecting the operating terminal 3 to the communication network N1 by wire or wireless connection and for performing data communication with one or more external devices such as combines 1 via the communication network N1 in accordance with a predetermined communication protocol.
[0027] The operation display unit 33 is a user interface comprising a display unit such as a liquid crystal display or an organic EL display that displays various information, and an operation unit such as a touch panel, mouse, or keyboard that accepts operations. The operator can register various setting information by operating the operation unit on the operation screen displayed on the display unit. The operator can also issue automatic driving instructions to the combine harvester 1 by operating the operation unit. Furthermore, the operator can understand the driving status of the combine harvester 1 as it automatically travels within the field F by observing the driving trajectory displayed on the operation terminal 3, even from a location away from the combine harvester 1.
[0028] The storage unit 32 is a non-volatile storage unit such as an HDD (Hard Disk Drive) or SSD (Solid State Drive) that stores various types of information. The storage unit 32 stores a control program that causes the operation control unit 31 to execute predetermined control processing. For example, the control program is non-temporarily recorded on a computer-readable recording medium such as a flash ROM, EEPROM, CD, or DVD, and is read by a predetermined reading device (not shown) provided on the operation terminal 3 and stored in the storage unit 32. Alternatively, the control program may be downloaded from a server (not shown) to the operation terminal 3 via a communication network N1 and stored in the storage unit 32. The storage unit 32 may also store work information transmitted from the combine harvester 1.
[0029] Furthermore, a dedicated application for automatically operating the combine harvester 1 is installed in the memory unit 32. The operation control unit 31 starts the dedicated application and performs various setting information processing related to the combine harvester 1, issues automatic operation instructions to the combine harvester 1, and so on.
[0030] The operation control unit 31 includes control devices such as a CPU, ROM, and RAM. The CPU is a processor that performs various arithmetic operations. The ROM is a non-volatile memory unit that stores control programs such as a BIOS and OS in advance to cause the CPU to perform various arithmetic operations. The RAM is a volatile or non-volatile memory unit that stores various information and is used as temporary memory for various processes performed by the CPU. The operation control unit 31 controls the operation terminal 3 by executing various control programs that are pre-stored in the ROM or memory unit 32 using the CPU.
[0031] As shown in Figure 1, the operation control unit 31 includes various processing units such as a setting processing unit 311 and an output processing unit 312. The operation control unit 31 functions as these various processing units by executing various processes according to the control program using the CPU. Some or all of these processing units may be composed of electronic circuits. The control program may be a program that causes multiple processors to function as processing units.
[0032] The setting processing unit 311 sets various setting information for the combine harvester 1 to operate automatically. Specifically, the setting processing unit 311 sets field information related to the field. This field information includes, for example, the shape, size, and location information (coordinates, etc.) of the outermost perimeter of the field, measurement point data that constitutes the outermost perimeter of the field, and the shape, size, and location information (coordinates, etc.) of the work area within the field where work is performed. The field information also includes the address of the field, the registration name and registration date of the field information, and the registration name and registration date of the work area within the field. The setting processing unit 311 accepts the registration operation of field information by the operator and sets the field information.
[0033] Furthermore, the setting processing unit 311 creates a target path including the work path and the turning path. For example, the operator selects the path pattern, turning type, etc., on the setting screen (not shown). The path patterns include "reciprocal mowing," which involves going back and forth through multiple strokes, and "circular mowing," which involves repeating a circular motion along the inner circumference of the work area within the field while shifting it towards the center. The operator selects one of these path patterns. In addition, the operator can correct the turning radius when turning during reciprocal mowing and circular mowing operations on the setting screen.
[0034] Furthermore, the setting processing unit 311 creates a work route based on information such as the field information, the route pattern, the turning type, and the turning radius. The setting processing unit 311 registers the created work route in association with the field.
[0035] Furthermore, the setting processing unit 311 sets the travel speed (vehicle speed) of the combine harvester 1. For example, the operator can set the straight-ahead vehicle speed, turning vehicle speed, and reverse vehicle speed for both working and non-working states on the setting screen.
[0036] In addition to the information described above, the setting processing unit 311 sets well-known information such as the type of combine harvester 1 (maximum number of harvesting rows), vehicle width, and vehicle length.
[0037] The output processing unit 312 outputs various setting information set by the setting processing unit 311 to the combine harvester 1. In addition, the output processing unit 312 outputs work start instructions and work end instructions to the combine harvester 1 based on the operator's operations.
[0038] When the operation control unit 31 receives the work start instruction from the operator, the output processing unit 312 outputs the work start instruction to the combine harvester 1. As a result, the control device 11 of the combine harvester 1 receives the work start instruction from the operation terminal 3. Upon receiving the work start instruction, the control device 11 starts the work and movement of the combine harvester 1. When the operation control unit 31 receives the work stop instruction from the operator, the output processing unit 312 outputs the work stop instruction to the combine harvester 1. As a result, the control device 11 of the combine harvester 1 receives the work stop instruction from the operation terminal 3. Upon receiving the work stop instruction, the control device 11 stops the work and movement of the combine harvester 1.
[0039] The operating terminal 3 may also be able to access the website (agricultural support site) of the agricultural support service provided by the server (not shown) via the communication network N1. In this case, the operating terminal 3 can function as an operating terminal for the server by having a browser program executed by the operation control unit 31. The server then comprises the processing units described above and executes each of the processes.
[0040] [Combine Harvester 1] Figure 2 shows a side view of the combine harvester 1. As shown in Figures 1 and 2, the combine harvester 1 includes a threshing unit 4, a sorting unit 5, a straw processing unit 6, a power unit 8, a control unit 9, a control device 11, a memory unit 12, a positioning unit 13, a driving unit 14, a harvesting unit 15, a storage unit 16, a communication unit 17, and the like. The combine harvester 1 is a so-called self-propelled combine harvester. The combine harvester 1 moves using the driving unit 14, threshes the grain stalks harvested by the harvesting unit 15 in the threshing unit 4, sorts the grain in the sorting unit 5 and stores it in the storage unit 16. The combine harvester 1 processes the straw after threshing using the straw processing unit 6. The combine harvester 1 drives the driving unit 14, the harvesting unit 15, the storage unit 16, the threshing unit 4, the sorting unit 5, and the straw processing unit 6 with power supplied by the power unit 8.
[0041] The running gear 14 is located below the machine frame 29 and comprises a pair of left and right crawler-type running gears 2 and a transmission (not shown). The running gear 14 uses power (e.g., rotational power) transmitted from the engine 27 of the power unit 8 to rotate the crawlers of the crawler-type running gears 2, thereby causing the combine harvester 1 to travel in the forward and backward directions and to turn in the left and right directions. The transmission transmits the power (rotational power) from the power unit 8 to the crawler-type running gears 2 and can also change the speed of the rotational power.
[0042] The harvesting unit 15 is located in front of the traveling unit 14 and performs harvesting work on rows within the number of harvestable rows. The harvesting unit 15 includes a divider 28, a lifting device 20, a cutting device 23, a conveying device 7, and a harvesting height detection device 40.
[0043] As shown in Figure 7, the cutting height detection device 40 includes a device body 41, a ground contact body 42, a detection sensor (not shown), etc., and detects the height of the cutting unit 15 (working height H in Figure 6). For example, as shown in Figure 7C, the detection sensor detects the amount of rotation of the device body 41 when the cutting unit 15 descends and the ground contact body 42 contacts the ground, and the cutting height detection device 40 detects the working height H based on the detection signal from the detection sensor. The control device 11 (operation processing unit 113) adjusts the working height H by operating the drive unit (hydraulic cylinder, etc.) of the cutting unit 15 so as to maintain the working height H detected by the cutting height detection device 40 at a set height (second working height H2). Figure 7A shows the height of the cutting unit 15 when the combine harvester 1 is not working (non-working height H0), and Figure 7B shows the height of the cutting unit 15 when the combine harvester 1 is working, which is a height that can avoid the entanglement of the discharged straw B1 (first working height H1). Thus, the harvesting unit 15 is configured to be able to change between a non-working height (non-working height H0) and two working heights (first working height H1, second working height H2).
[0044] The divider 28 separates the grain stalks in the field into individual rows and guides a predetermined number of grain stalks, within the number of rows that can be harvested, to the lifting device 20. The lifting device 20 lifts the grain stalks guided by the divider 28. The cutting device 23 cuts the grain stalks that have been lifted by the lifting device 20. The conveying device 7 conveys the grain stalks cut by the cutting device 23 to the threshing unit 4.
[0045] The threshing unit 4 is located behind the harvesting unit 15. The threshing unit 4 comprises a feed chain 18 and a threshing drum 19. The feed chain 18 transports the stalks of grain conveyed from the conveying device 7 of the harvesting unit 15 for threshing, and further transports the threshed stalks, i.e., the straw, to the straw disposal unit 6. The threshing drum 19 threshes the stalks of grain being transported by the feed chain 18.
[0046] The sorting unit 5 is located below the threshing unit 4. The sorting unit 5 includes an oscillating sorting device 21, a blown-air sorting device 22, a grain conveying device (not shown), and a straw debris discharge device (not shown). The oscillating sorting device 21 separates the threshed grain that has fallen from the threshing unit 4 into grain and straw debris by sieving. The blown-air sorting device 22 further separates the threshed grain separated by the oscillating sorting device 21 into grain and straw debris by blowing air. The grain conveying device conveys the grain separated by the oscillating sorting device 21 and the blown-air sorting device 22 to the storage unit 16. The straw debris discharge device discharges the straw debris separated by the oscillating sorting device 21 and the blown-air sorting device 22 to the outside of the machine.
[0047] The storage unit 16 is located to the right of the threshing unit 4. The storage unit 16 comprises a storage tank (grain tank) 24 and a discharge device 25. The storage tank 24 stores the grain that has been transported from the sorting unit 5. The discharge device 25 consists of an auger and the like, and at a predetermined discharge position in the field F, it discharges the grain stored in the storage tank 24 to a transport vehicle.
[0048] The straw discharge processing unit 6 is located behind the threshing unit 4. The straw discharge processing unit 6 includes a straw conveying device (not shown) and a straw cutting device (not shown). The straw conveying device conveys the straw transported from the feed chain 18 of the threshing unit 4 to the straw cutting device. The straw cutting device cuts the straw transported by the straw conveying device and discharges it outside the machine. The straw discharge processing unit 6 discharges the straw from the harvested grain stalks at the location of the grain stalks to be harvested. In this way, the combine harvester 1 harvests grain stalks while moving and discharges the straw B1 to the rear of the machine, so that the straw B1 is piled up in rows in the tracks left by the combine harvester 1 (see Figures 4 and 5).
[0049] The power unit 8 is located above the traveling unit 14 and in front of the storage unit 16. The power unit 8 includes an engine 27 that generates rotational power. The power unit 8 transmits the rotational power generated by the engine 27 to the traveling unit 14, the harvesting unit 15, the storage unit 16, the threshing unit 4, the sorting unit 5, and the straw waste processing unit 6.
[0050] The control unit 9 is located above the power unit 8. The control unit 9 is equipped with controls around the driver's seat, which is the seat where the operator sits, for controlling the movement of the combine harvester 1. These controls include a handle for instructing the turning of the combine harvester 1, and a main and sub-transmission levers for instructing changes in the forward and reverse speed of the combine harvester 1. Manual movement of the combine harvester 1 is performed by the driving unit 14, which receives input from the handle, main and sub-transmission levers of the control unit 9. The control unit 9 also includes mechanisms for operating the harvesting operation by the harvesting unit 15, the threshing operation by the threshing unit 4, and the discharge operation by the discharge device 25 of the storage unit 16.
[0051] The positioning unit 13 acquires the position of the combine harvester 1 using a satellite positioning system such as GPS. For example, the positioning unit 13 receives positioning signals from positioning satellites via a positioning antenna and acquires positional information of the positioning unit 13, i.e., the position of the combine harvester 1 (measurement point data), based on the positioning signals. The positioning unit 13 may be composed of a quantum compass instead of a positioning antenna.
[0052] The communication unit 17 (see Figure 1) is a communication interface for connecting the combine 1 to the communication network N1 by wire or wireless connection and for performing data communication with external devices such as the operation terminal 3 via the communication network N1 in accordance with a predetermined communication protocol.
[0053] The storage unit 12 is a non-volatile storage unit such as an HDD or SSD that stores various types of information. The storage unit 12 stores control programs, such as an automatic driving program, which causes the control device 11 to execute the automatic driving process (see Figure 13) described later. For example, the automatic driving program is non-temporarily recorded on a computer-readable recording medium such as a flash ROM, EEPROM, CD, or DVD, and is read by a predetermined reading device (not shown) and stored in the storage unit 12. Alternatively, the automatic driving program may be downloaded from a server (not shown) to the combine 1 via a communication network N1 and stored in the storage unit 12. The storage unit 12 also stores various setting information obtained from the operation terminal 3.
[0054] The control device 11 includes control devices such as a CPU, ROM, and RAM. The CPU is a processor that performs various arithmetic operations. The ROM is a non-volatile memory unit that stores control programs such as a BIOS and OS in advance to cause the CPU to perform various arithmetic operations. The RAM is a volatile or non-volatile memory unit that stores various information and is used as temporary memory for the various processes performed by the CPU. The control device 11 controls the combine 1 by executing various control programs that have been stored in advance in the ROM or memory unit 12 using the CPU.
[0055] Specifically, as shown in Figure 1, the control device 11 includes various processing units such as a driving processing unit 111, an acquisition processing unit 112, and an operation processing unit 113. The control device 11 functions as these various processing units by executing various processes according to the automatic driving program using the CPU. Some or all of these processing units may be composed of electronic circuits. The automatic driving program may be a program that causes multiple processors to function as processing units.
[0056] The driving processing unit 111 automatically drives the combine harvester 1 according to a target route R set for the field F. Specifically, the driving processing unit 111 drives the combine harvester 1 according to a plurality of work routes included in the target route R, which cause the combine harvester 1 to perform predetermined tasks (harvesting), and a turning route that connects the plurality of work routes. For example, the driving processing unit 111 acquires various setting information set for the field F from the operation terminal 3. In addition, during harvesting, the driving processing unit 111 acquires the position of the combine harvester 1 from the positioning unit 13, and controls the power unit 8, driving unit 14, and harvesting unit 15 so that the combine harvester 1 automatically drives along the work routes and performs harvesting based on the position of the combine harvester 1 and the work routes included in the target route R.
[0057] For example, as shown in Figure 5, the driving unit 111 causes the combine harvester 1 to automatically travel and perform harvesting operations along the outer perimeter in the outer perimeter region F1 from the starting position S, and then to automatically travel and perform harvesting operations in the inner perimeter region F2 up to the ending position G.
[0058] The acquisition processing unit 112 acquires the position of the discarded straw B1 and the position of the work target (grain stalks, unharvested area, etc.). For example, when the combine harvester 1 automatically travels along a target path R, the discarded straw B1 is discharged onto the already traveled target path R, so the acquisition processing unit 112 can acquire the position of the discarded straw B1 based on the route information of the target path R and the position information of the current position of the combine harvester 1. In addition, since the left-right position and width of the discarded straw B1 are determined based on the placement and structure of the discarded straw processing unit 6 inside the combine harvester 1, the acquisition processing unit 112 can also acquire the left-right position and width of the discarded straw B1. The acquisition processing unit 112 may acquire the position of the discarded straw B1 in real time while the combine harvester 1 is working and traveling after starting work, or it may acquire the position of the discarded straw B1 based on setting information acquired from the operation terminal 3 before the combine harvester 1 starts work.
[0059] Furthermore, the acquisition processing unit 112 acquires the position of the grain stalks (unharvested area (unworked area), harvested area (worked area)) based on information (position, shape, etc.) of the field F (outer perimeter area F1, inner perimeter area F2). Based on the route information of the target route R and the position information of the combine harvester 1's current position, the acquisition processing unit 112 can acquire the position of the grain stalks (unharvested area) in real time while the combine harvester 1 is running.
[0060] In another embodiment, the acquisition processing unit 112 may acquire the positions of the discarded straw B1 and grain stalks based on images captured by a camera mounted on the combine harvester 1.
[0061] The motion processing unit 113 gradually changes the posture of the harvesting unit 15 during operation based on the position of the discarded straw B1 and the position of the grain stalks acquired by the acquisition processing unit 112. Specifically, the motion processing unit 113 gradually changes (for example, raises or lowers) the height of the harvesting unit 15 based on the position of the discarded straw B1 and the position of the grain stalks.
[0062] For example, Figure 8 shows the harvesting operation in the inner circumference region F2. W1 in Figure 8 indicates the working width (total width in the left-right direction) of the harvesting unit 15. When harvesting in the inner circumference region F2, there is straw waste B1 discharged from the harvesting operation in the outer circumference region F1 around the inner circumference region F2 (see Figure 5). Here, it is assumed that rows of straw waste B11 and B12 have been formed as a result of harvesting two laps in the outer circumference region F1. When the combine harvester 1 enters the work path R1 in the inner circumference region F2, if the height of the harvesting unit 15 is set to the non-working height H0 (see Figure 7A), and the harvesting unit 15 passes through the straw waste B11 and B12, and then the height of the harvesting unit 15 is set to the second working height H2 (see Figure 7C) at the start of the work path R1, the start timing of the harvesting operation will be delayed, resulting in unharvested grain stalks. In contrast, if the height of the cutting unit 15 is set to the second working height H2 before the start of the work path R1, the discarded straw B1 will be caught in the left side of the cutting unit 15, as shown in Figure 9 (area E1 shown in Figure 9).
[0063] Therefore, when the combine harvester 1 reaches a position a predetermined distance before the starting position of the grain stalks, the operation processing unit 113 sets the harvesting unit 15 to a first working height H1 (see Figure 7B) which is lower than the non-working height H0 and higher than the height of the discarded straw B1 (where the first working height H1 > second working height H2). The position a predetermined distance before the starting position is, for example, a position a predetermined distance before the starting end of the work row (grain stalk row) corresponding to the work path R1, i.e., the starting end A21 shown in Figure 9. It is sufficient that the harvesting unit 15 is at the first working height H1 when the combine harvester 1 (harvesting unit 15) reaches the starting end A21. For example, the operation processing unit 113 sets the harvesting unit 15 to the non-working height H0 while turning, and sets the harvesting unit 15 to the first working height H1 at the timing when it switches to straight-line driving after the turning is completed. Then, when the cutting unit 15 has passed the straw pile B1 while it is set to the first working height H1, the operation processing unit 113 sets the cutting unit 15 to the second working height H2.
[0064] For example, as shown in Figure 10, when the combine harvester 1 reaches the intersection point P1 between the straight line L1 passing through one end (the right end in Figure 10) of the working width W1 of the harvesting unit 15 and the discarded straw B11 (straw pile), the operation processing unit 113 changes (lowers) the harvesting unit 15 from a non-working height H0 to a first working height H1. When the combine harvester 1 reaches the intersection point P2 between the straight line L2 passing through the other end (the left end in Figure 10) of the working width W1 of the harvesting unit 15 and the discarded straw B12 (straw pile), the operation processing unit 113 changes (lowers) the harvesting unit 15 from a first working height H1 to a second working height H2. Specifically, the motion processing unit 113 sets the harvesting unit 15 to the second working height H2 when the harvesting unit 15 reaches the position furthest from the combine harvester 1's current position in the direction of travel at the boundary of the straw discharge row (discharge area) of the discharged straw B12 (intersection P2 in Figure 10). For example, when the direction of travel of the combine harvester 1 (direction of the arrow in Figure 10) and the direction of extension of the straw discharge row of the discharged straw B12 intersect diagonally, the motion processing unit 113 changes (lowers) the harvesting unit 15 from the first working height H1 to the second working height H2 when one end (right end) of the harvesting unit 15 has passed the discharge row and the other end (left end) has reached the boundary on the direction of travel side of the discharge row (intersection P2). Furthermore, the motion processing unit 113 may change (lower) the harvesting unit 15 from the first working height H1 to the second working height H2 after the combine harvester 1 reaches the intersection P2. That is, the motion processing unit 113 may change (lower) the harvesting unit 15 from the first working height H1 to the second working height H2 after both the left and right ends of the harvesting unit 15 have passed the boundary on the direction of travel side in the discharge row. In this case, it is preferable that the motion processing unit 113 lowers the harvesting unit 15 from the first working height H1 to the second working height H2 after the combine harvester 1 reaches the intersection P2 but before the divider 28 at the left end of the harvesting unit 15 reaches the inner circumference area F2. As a result, in section K1, the harvesting unit 15 is positioned above the discarded straw B11 and B12, so it passes through without getting caught in the discarded straw B11 and B12, and in the area from the starting point A21 to the end of section K1, at the first working height H1, only one or more rows on the right side of the working width W1 of the harvesting unit 15 harvest the grain stalks. When the harvesting unit 15 passes through (exits) section K1, it harvests the grain stalks with all rows of the working width W1 at the second working height H2 according to the working path R1.
[0065] Thus, the operation processing unit 113 sets the harvesting unit 15 to a first working height H1 (see Figure 7B) before at least a portion of the left-right width (working width W1) of the harvesting unit 15 overlaps with the position of the discarded straw B1, and sets the harvesting unit 15 to a second working height H2 (see Figure 7C) after the entire left-right width of the harvesting unit 15 has passed through the position of the discarded straw B1 (section K1). Alternatively, the operation processing unit 113 may set the harvesting unit 15 to a first working height H1 after at least a portion of the left-right width (working width W1) of the harvesting unit 15 overlaps with the position of the discarded straw B1, and before a portion of the working width W1 (one end of the harvesting unit 15) enters the work area (before reaching the starting end A21 in Figure 10). Furthermore, the operation processing unit 113 may set the timing for changing the harvesting unit 15 to a first working height H1 according to the current vehicle speed of the combine harvester 1. For example, the motion processing unit 113 changes the working height to the first working height H1 at a position far from the starting point A21 when the vehicle speed is high, and changes the working height to the first working height H1 at a position close to the starting point A21 when the vehicle speed is low. In other words, when the combine harvester 1 enters the work area, the motion processing unit 113 lowers the working height of the harvesting unit 15 in two stages (first working height H1, second working height H2). Also, when the harvesting unit 15 is set to the first working height H1, if one side of the width of the harvesting unit 15 in the left-right direction overlaps with the position of the discarded straw B1 and the other side overlaps with the position of the grain stalks, the motion processing unit 113 causes the harvesting unit 15 to perform the harvesting operation only on the other side.
[0066] When the combine harvester 1 exits the inner circumference area F2 after completing work on work path R1 and moving to the next work path, the operation processing unit 113 performs the same processing as described above. Figure 11 shows how the harvesting unit 15 gets tangled with the discharged straw B1 when the combine harvester 1 exits the inner circumference area F2. For example, if the harvesting unit 15 continues harvesting at the second working height H2 up to the grain stalks at the end of work path R1 A22, the left side of the harvesting unit 15 will come into contact with and get tangled with the discharged straw B1 (area E2 shown in Figure 11).
[0067] Therefore, when the combine harvester 1 reaches a position a predetermined distance before the end of the work position of the grain stalks while the harvesting unit 15 is set to the second working height H2, the operation processing unit 113 sets the harvesting unit 15 to the first working height H1. The position a predetermined distance before is, for example, the position before at least a part of the left-right width (working width W1) of the harvesting unit 15 overlaps with the discarded straw B13 (straw pile). In the example shown in Figure 12, the position a predetermined distance before is the position a predetermined distance before the intersection P3 of the straight line L2 passing through one end (the left end in Figure 12) of the working width W1 of the harvesting unit 15 and the discarded straw B13 (straw pile). Alternatively, when the combine harvester 1 reaches the intersection P3, the operation processing unit 113 may change (raise) the harvesting unit 15 from the second working height H2 to the first working height H1. It is sufficient that the harvesting unit 15 is positioned at the first working height H1 when the combine harvester 1 (harvesting unit 15) reaches intersection P3. Preferably, the harvesting unit 15 is set to the first working height H1 before reaching intersection P3, and at least a portion of the left-right width (working width W1) of the harvesting unit 15 (the left end in Figure 12) has reached the worked area (outside the inner circumference area F2). The operation processing unit 113 may also set the timing for changing the harvesting unit 15 to the first working height H1 according to the current vehicle speed of the combine harvester 1.
[0068] For example, as shown in Figure 12, when the combine harvester 1 reaches just before intersection P3, the operation processing unit 113 changes (raises) the harvesting unit 15 from the second working height H2 to the first working height H1. When the combine harvester 1 reaches the intersection P4 (end A22) between the straight line L1 passing through the other end (right end in Figure 12) of the working width W1 of the harvesting unit 15 and the inner circumference region F2, the operation processing unit 113 changes (raises) the harvesting unit 15 from the first working height H1 to the non-working height H0.
[0069] As a result, in section K2, the harvesting unit 15 passes through the left side of its working width W1 without entangling the discarded straw B13, while harvesting the grain stalks at a first working height H1 in one or more rows on the right side of its working width W1. After passing through section K2, the harvesting unit 15 passes through the discarded straw B13 and B14 at a non-working height H0. The operation processing unit 113 may maintain the height of the harvesting unit 15 at the first working height H1 even after passing through section K2. Alternatively, the operation processing unit 113 may change the height of the harvesting unit 15 from the first working height H1 to a non-working height H0 when it passes through section K2 and switches from straight-line travel to turning travel. In other words, the operation processing unit 113 may set the harvesting unit 15 to a non-working height H0 after the entire width (working width W1) of the harvesting unit 15 has passed the position of the discarded straw B1. Thus, when the combine harvester 1 exits the work area, the operation processing unit 113 raises the working height of the harvesting unit 15 in two stages (first working height H1, second working height H2).
[0070] In the configurations shown in Figures 10 and 12, the driving processing unit 111 may set the vehicle speed of the combine harvester 1 when the harvesting unit 15 is set to the first working height H1 to a slower speed than the vehicle speed (set vehicle speed) when the harvesting unit 15 is set to the second working height H2. The set vehicle speed is set in advance by the operator at the operation terminal 3. The driving processing unit 111 may also temporarily stop the combine harvester 1 before changing the vehicle speed. In the example shown in Figure 10, the driving processing unit 111 drives the combine harvester 1 at a speed lower than the set vehicle speed (e.g., straight-line vehicle speed) in section K1, and returns the combine harvester 1 to the set vehicle speed after passing section K1. In the example shown in Figure 12, the driving processing unit 111 drives the combine harvester 1 at a speed lower than the set vehicle speed (e.g., straight-line vehicle speed) in section K2, and returns the combine harvester 1 to the set vehicle speed (e.g., turning vehicle speed) after passing section K2. This makes it possible to shorten the travel distance (sections K1, K2) when the harvesting unit 15 is set to the first working height H1.
[0071] In the above-described embodiment, the motion processing unit 113 changes the posture of the harvesting unit 15 in stages based on the position of the discarded straw B1 and the position of the work object (in this case, grain stalks and unharvested areas). In another embodiment, the motion processing unit 113 may change the posture of the harvesting unit 15 in stages based only on the position of the discarded straw B1. For example, in the example shown in Figure 10, the motion processing unit 113 lowers the harvesting unit 15 from a non-working height H0 to a first working height H1 at the position of the discarded straw B11 (intersection P1), and lowers the harvesting unit 15 from a first working height H1 to a second working height H2 at the position of the discarded straw B12 (intersection P2). In the example shown in Figure 12, the operation processing unit 113 raises the cutting unit 15 from the second working height H2 to the first working height H1 at the location of the discarded straw B13 (intersection P3), and after passing the work target (inner circumference area F2), raises the cutting unit 15 from the first working height H1 to the non-working height H0.
[0072] In another embodiment, the operation processing unit 113 may change the posture of the harvesting unit 15 in stages based solely on the position of the grain stalks (unharvested area). For example, in the example shown in Figure 10, the operation processing unit 113 lowers the harvesting unit 15 from a non-working height H0 to a first working height H1 at a predetermined distance before the starting end A21 of the work row (grain stalk row), and lowers the harvesting unit 15 from a first working height H1 to a second working height H2 at a position a predetermined distance behind the starting end A21 in the direction of travel. In the example shown in Figure 12, the operation processing unit 113 raises the harvesting unit 15 from a second working height H2 to a first working height H1 at a predetermined distance before the end A22 of the work row (grain stalk row), and raises the harvesting unit 15 from a first working height H1 to a non-working height H0 after passing the end A22.
[0073] In this way, the operation processing unit 113 gradually changes the posture of the work unit (harvesting unit 15) when performing the work (harvesting work) based on at least one of the position of the discharged material (discarded straw B1) and the position of the work target (grain stalks).
[0074] In other embodiments, the first working height H1 may be preset or changeable by the operator. For example, the control device 11 may calculate the height of the straw piles B1 based on information such as the speed of the combine harvester 1 and the amount of straw piles B1 discharged, and automatically set and update the first working height H1 based on the calculation result. Alternatively, the control device 11 may set and update the first working height H1 in response to the operator's input operation (input operation for the first working height H1) on the operation screen of the operation terminal 3.
[0075] [Automatic driving process] An example of the automated driving process performed by the automated driving system 10 will be described below with reference to Figure 13.
[0076] Furthermore, the present invention can be understood as an invention of an automated driving method that performs one or more steps included in the automated driving process. The one or more steps included in the automated driving process described herein may be omitted as appropriate. Also, the execution order of each step in the automated driving process may differ to the extent that similar effects are produced. Furthermore, although the case in which the control device 11 performs each step in the automated driving process is described here as an example, an automated driving method in which one or more processors distribute and execute each step in the automated driving process can also be considered as another embodiment. In addition, the operation control method of the present invention is included in the automated driving method, and the operation control program of the present invention is included in the automated driving program that performs the automated driving process.
[0077] In step S1, the control device 11 determines whether or not it has received a work start instruction. If the control device 11 receives the work start instruction from the operation terminal 3 (S1: Yes), it proceeds to step S2. The control device 11 waits until it receives the work start instruction (S1: No).
[0078] In step S2, the control device 11 starts the automatic driving process. Specifically, the control device 11 makes the combine harvester 1 drive automatically according to the target route R included in the setting information obtained from the operation terminal 3. For example, the control device 11 makes the combine harvester 1 drive automatically according to the target route R in field F (see Figure 5) and performs work (harvesting). The control device 11 may also be able to accept operation of the main transmission lever by the operator riding in the combine harvester 1. In this case, the control device 11 changes the vehicle speed of the automatically driving combine harvester 1 according to the operator's operation.
[0079] Furthermore, the control device 11 controls the height of the harvesting unit 15 during the automatic driving process. Specifically, the control device 11 sets the harvesting unit 15 to a second working height H2 (see Figure 7C) in the area where harvesting is performed (working area), and sets the harvesting unit 15 to a non-working height H0 (see Figure 7A) in the area where harvesting is not performed (non-working area).
[0080] Next, in step S3, the control device 11 determines whether the harvesting unit 15 of the combine harvester 1 has reached a position where it is necessary to change the height (working height) during operation (working height change position). For example, the working height change position is set according to the position of the discarded straw B1 when the combine harvester 1 crosses over it, the position of the grain stalks within the work area, etc. If the control device 11 determines that the combine harvester 1 has reached the working height change position (S3: Yes), it proceeds to step S4.
[0081] In response, if the control device 11 determines that the harvesting unit 15 of the combine harvester 1 has not reached the working height change position (S3: No), it proceeds to step S8. The control device 11 continues the automatic driving process while executing the determination process in step S3 until the combine harvester 1 reaches the end position G (S8: No). While the combine harvester 1 has not reached the working height change position, the control device 11 performs the harvesting work by switching the height of the harvesting unit 15 between the second working height H2 and the non-working height H0.
[0082] When the combine harvester 1 reaches the working height change position (S3: Yes), in step S4, the control device 11 sets the height of the harvesting unit 15 to the first working height H1. For example, when the harvesting unit 15 of the combine harvester 1 reaches the position of the discarded straw B11 (intersection P1) (the working height change position) (see Figure 10), the control device 11 sets the height of the harvesting unit 15 to the first working height H1 and lowers the harvesting unit 15 from the non-working height H0 to the first working height H1. As a result, the combine harvester 1 automatically travels through section K1 with the harvesting unit 15 maintained at the first working height H1 (see Figure 10).
[0083] For example, when the harvesting unit 15 of the combine harvester 1 reaches the position of the discarded straw B13 (intersection P3) (the aforementioned working height change position) (see Figure 12), the control device 11 sets the height of the harvesting unit 15 to the first working height H1 and raises the harvesting unit 15 from the second working height H2 to the first working height H1. As a result, the combine harvester 1 automatically travels through section K2 with the harvesting unit 15 maintained at the first working height H1 (see Figure 12).
[0084] In step S5, the control device 11 determines whether the combine harvester 1 enters the work area. If the control device 11 determines that the combine harvester 1 enters the work area (S5: Yes), it proceeds to step S6. Conversely, if the control device 11 determines that the combine harvester 1 does not enter the work area (exits the work area) (S5: No), it proceeds to step S51. For example, as shown in Figure 10, when the harvesting unit 15 is at the first working height H1 and the direction of travel of the combine harvester 1 is towards entering the inner circumference area F2, the control device 11 determines that the combine harvester 1 enters the work area (S5: Yes). Conversely, as shown in Figure 12, for example, when the harvesting unit 15 is at the first working height H1 and the direction of travel of the combine harvester 1 is towards exiting the inner circumference area F2, the control device 11 determines that the combine harvester 1 does not enter the work area (S5: No).
[0085] Next, in step S6, the control device 11 determines whether the combine harvester 1 has reached the working height change position. If the control device 11 determines that the combine harvester 1 has reached the working height change position (S6: Yes), it proceeds to step S7.
[0086] For example, the control device 11 maintains the height of the harvesting unit 15 at the first working height H1 until the combine harvester 1 reaches the working height change position (S6: No). For example, as shown in Figure 10, the control device 11 maintains the harvesting unit 15 at the first working height H1 and causes it to automatically travel until the combine harvester 1 reaches the intersection P2 (working height change position) of the straight line L2 passing through the other end (left end) of the working width W1 of the harvesting unit 15 and the discarded straw B12 (straw pile). As a result, the harvesting unit 15 passes through section K1 without getting caught in the discarded straw B11 and B12, and the right side of the harvesting unit 15 harvests the grain stalks at the first working height H1 in the area from the starting point A21 to the end of section K1. When the combine harvester 1 reaches the intersection P2 (working height change position) (S6: Yes), the control device 11 moves the process to step S7.
[0087] In step S7, the control device 11 sets the height of the harvesting unit 15 to the second working height H2. For example, when the harvesting unit 15 of the combine harvester 1 reaches the position of the discarded straw B12 (intersection P2) (the working height change position) (see Figure 10), the control device 11 sets the height of the harvesting unit 15 to the second working height H2 and lowers the harvesting unit 15 from the first working height H1 to the second working height H2. As a result, the combine harvester 1 performs harvesting work while automatically traveling along the work path R1 in the inner circumference area F2 with the harvesting unit 15 maintained at the second working height H2 (see Figure 10). After step S7, the control device 11 moves the process to step S8.
[0088] In contrast, if the combine harvester 1 exits the work area (inner circumference area F2) (S5: No), in step S51, the control device 11 determines whether the combine harvester 1 has reached the work height change position. If the control device 11 determines that the combine harvester 1 has reached the work height change position (S51: Yes), it proceeds to step S52.
[0089] For example, the control device 11 maintains the height of the harvesting unit 15 at the first working height H1 until the combine harvester 1 reaches the working height change position (S51: No). For example, as shown in Figure 12, the control device 11 maintains the harvesting unit 15 at the first working height H1 and causes it to automatically travel until the combine harvester 1 reaches the intersection point P4 (end point A22) of the straight line L1 passing through the right end of the working width W1 of the harvesting unit 15 and the inner circumference region F2. As a result, the harvesting unit 15 passes through section K2 without entangling the discharged straw B13, and the right side of the harvesting unit 15 harvests the grain stalks at the first working height H1 in the region from the beginning to the end point A22 of section K2. When the combine harvester 1 reaches the intersection point P4 (working height change position) (S51: Yes), the control device 11 moves the process to step S52.
[0090] In step S52, the control device 11 sets the height of the harvesting unit 15 to the non-working height H0. For example, when the harvesting unit 15 of the combine harvester 1 reaches the end A22 (intersection P4) (working height change position) of the inner circumference region F2 (see Figure 12), the control device 11 sets the height of the harvesting unit 15 to the non-working height H0 and raises the harvesting unit 15 from the first working height H1 to the non-working height H0. As a result, the combine harvester 1 moves to the next work path while automatically traveling (turning, etc.) around the outer circumference region F1 with the harvesting unit 15 maintained at the non-working height H0 (see Figure 12). After step S52, the control device 11 moves the process to step S8.
[0091] In step S8, the control device 11 determines whether the combine harvester 1 has reached the end position G (see Figure 5). If the control device 11 determines that the combine harvester 1 has reached the end position G (S8: Yes), it terminates the automatic driving process. If the control device 11 determines that the combine harvester 1 has not reached the end position G (S8: No), it proceeds to step S3. The control device 11 repeatedly executes the above process until the combine harvester 1 reaches the end position G (S8: No).
[0092] In this manner, the control device 11 repeatedly executes the above-described process from the starting position S to the ending position G, causing the combine harvester 1 to automatically travel along the target path R. At the same time, at the working height change positions corresponding to the position of the discarded straw B1 and the grain stalks (unharvested area), the height of the harvesting unit 15 is changed in stages (raised or lowered) (non-working height H0, first working height H1, second working height H2) to perform the harvesting operation.
[0093] As described above, the automated driving system 10 according to this embodiment controls the operation of a work unit (e.g., a harvesting unit 15) provided on a work vehicle (e.g., a combine harvester 1) that travels along a target path R while performing predetermined work (e.g., harvesting work) on a work target (e.g., grain stalks), and discharges the waste (e.g., straw) generated by the work along the track of the target path R. The automated driving system 10 also changes the posture of the harvesting unit 15 in stages based on, for example, the position of the straw and the position of the grain stalks (unharvested area). For example, the automated driving system 10 changes the working height of the harvesting unit 15 in stages based on, for example, the position of the straw and the position of the grain stalks (unharvested area). Specifically, the automated driving system 10 changes (raises and lowers) the working height of the harvesting unit 15 during harvesting in two stages (first working height H1, second working height H2).
[0094] With the above configuration, for example, before the combine harvester 1 enters the inner circumferential region F2 from the outer circumferential region F1, the working height of the harvesting unit 15 can be lowered to a height lower than the non-working height H0 (first working height H1). This prevents the straw B1 from getting caught in the harvesting unit, and after entering the inner circumferential region F2, it is possible to quickly lower it to the second working height H2 (set height), thereby improving work efficiency. Furthermore, as shown in Figure 5, for example, if the shape of the field F is inclined (not perpendicular) to the direction of travel (working direction) of the combine harvester 1, by lowering the working height of the harvesting unit 15 to a height lower than the non-working height H0 and higher than the second working height H2 (first working height H1) before the combine harvester 1 enters the inner circumferential region F2 from the outer circumferential region F1, it is possible to prevent the straw B1 from getting caught in the harvesting unit 15 on one side, while performing harvesting work on the other side of the harvesting unit 15 (see Figure 10). Therefore, it becomes possible to improve the work efficiency of the work unit (such as the harvesting unit) that performs a predetermined task (such as harvesting) on the target object (such as grain stalks) while simultaneously discharging waste (such as straw B1) generated by the work into the track.
[0095] [Other embodiments] The present invention is not limited to the embodiments described above. Other embodiments of the present invention are described below.
[0096] In the above-described embodiment, the control device 11 (operation processing unit 113) suppresses the entanglement of straw by changing the height of the harvesting unit 15. In another embodiment of the present invention, the control device 11 may suppress the entanglement of straw by controlling the horizontal state of the combine harvester 1 in the left-right direction (horizontal control).
[0097] Specifically, the control device 11 tilts the harvesting unit 15 in the left-right direction based on at least one of the positions of the discarded straw and the grain stalks (unharvested area). The control device 11 may tilt the harvesting unit 15 relative to the ground by tilting the body of the combine harvester 1, or it may tilt only the harvesting unit 15 relative to the ground while keeping the body of the combine harvester 1 horizontal. For example, as shown in Figure 14A, when the harvesting unit 15 is set to a non-working height H0, the control device 11 tilts the harvesting unit 15 to a first tilted state (change of posture) by lowering the right side (left side in the figure) of the body of the combine harvester 1 to a first working height H1. The control device 11 may also tilt the harvesting unit 15 by raising one side (right side in the figure) of the combine harvester 1.
[0098] Here, when one side of the cutting unit 15's width in the left-right direction coincides with the position of the discarded straw B1 and the other side coincides with the position of the grain stalk (when it reaches the starting point A21 shown in Figure 10), the control device 11 tilts the cutting unit 15 so that the one side (left) is lower than the non-working height H0 and higher than the height of the discarded straw B12, and the other side (right) is lower than the one side (left). This causes the cutting unit 15 to perform the cutting operation only on the other side (right). The control device 11 also returns the cutting unit 15 to a horizontal state after the entire width of the cutting unit 15 in the left-right direction has passed the position of the discarded straw B12 (intersection P2).
[0099] For example, in the example shown in Figure 10, the control device 11 tilts the combine harvester 1 so that the right side of the harvesting unit 15 is at the position of the discarded straw B11 (intersection P1), changing it to a first tilted state (see Figure 14A). Subsequently, the control device 11 lowers the combine harvester 1 in the first tilted state as a whole (equally on both sides) when the combine harvester 1 is just before the starting point A21 of the inner circumference region F2 (for example, after the right side of the harvesting unit 15 has passed the discarded straw B12), changing it to a second tilted state (see Figure 14B). For example, the control device 11 lowers the combine harvester 1 or the harvesting unit 15 as a whole until the right side of the harvesting unit 15 is at a second working height H2 (see Figure 14B). Note that in Figure 14B, the height of the left side of the harvesting unit 15 (third working height H3) should be higher than the height of the discarded straw. In the second inclined state, the harvesting unit 15 passes over the straw piles B11 and B12 on the left side without getting caught, and harvests the grain stalks from the starting point A21 to the end of section K1 on the right side. Subsequently, when the combine harvester 1 reaches the position of the straw pile B12 (intersection P2) (see Figure 10), the control device 11 lowers the combine harvester 1 or the left side of the harvesting unit 15 to change it to a horizontal state so that the left side of the harvesting unit 15 is at the second working height H2 (see Figure 14C). As a result, the height of the harvesting unit 15 is set to the second working height H2 on both the left and right sides. Note that the inclination angles of the first inclined state and the second inclined state may be the same or different. Alternatively, the control device 11 may change to a horizontal state after the combine harvester 1 reaches intersection P2, setting the height of the harvesting unit 15 to the second working height H2 on both the left and right sides. Furthermore, the control device 11 may set the first inclined state before at least a portion of the left-right width (working width W1) of the harvesting unit 15 overlaps with the position of the discarded straw B1, and set the horizontal state after the entire left-right width of the harvesting unit 15 has passed the position of the discarded straw B1 (section K1). Alternatively, the control device 11 may set the second inclined state after at least a portion of the left-right width (working width W1) of the harvesting unit 15 overlaps with the position of the discarded straw B1, and before a portion of the working width W1 (one end of the harvesting unit 15) enters the work area (before reaching the starting end A21 in Figure 10). The control device 11 may also set the timing for changing to the first inclined state according to the current vehicle speed of the combine harvester 1.Alternatively, the control device 11 may temporarily stop the combine harvester 1 before tilting the body (harvesting section 15) of the combine harvester 1.
[0100] For example, in the example shown in Figure 12, when the combine harvester 1 reaches the position of the discarded straw B13 (intersection P3), the control device 11 tilts the combine harvester 1 or the discarded straw unit 15 so that the left side of the discarded straw unit 15 is higher than the height of the discarded straw B13 (to the third working height H3 or the first working height H1), while maintaining the right side of the discarded straw unit 15 at the second working height H2, thereby changing to the second tilted state (see Figure 14B). Subsequently, when the combine harvester 1 reaches the end A22 (intersection P4) of the inner circumference region F2, or after passing the end A22 but before reaching the discarded straw B13, the control device 11 raises the right side of the combine harvester 1 or the discarded straw unit 15 to change to a horizontal state. The control device 11 may also return the discarded straw unit 15 to the horizontal state by setting it to a non-working height H0. The control device 11 may also set the combine harvester 1 to the second tilted state when the combine harvester 1 reaches the intersection P3. It is preferable to set the second tilt state when the combine harvester 1 is approaching intersection P3 and at least a portion of the lateral width (working width W1) of the harvesting unit 15 (the leftmost part in Figure 12) has reached the worked area (outside the inner circumference area F2). The control device 11 may also set the timing for changing to the second tilt state according to the current vehicle speed of the combine harvester 1. The control device 11 may also temporarily stop the combine harvester 1 before tilting the body of the combine harvester 1 (harvesting unit 15).
[0101] In the above configuration, similar to the embodiment in which the height of the harvesting unit 15 is changed, it is possible to improve the work efficiency of the work unit (harvesting unit, etc.) that performs predetermined work (harvesting work, etc.) on the work target (grain stalks, etc.) while discharging waste (straw waste B1, etc.) generated by the work into the track.
[0102] The control device 11 may tilt the harvesting unit 15 by lowering one side of the combine harvester 1's body, or it may tilt the harvesting unit 15 by first lowering the harvesting unit 15 to its lowest position (for example, the second working height H2) and then raising one side of the combine harvester 1's body.
[0103] In the above configuration, the control device 11 may set the vehicle speed of the combine harvester 1 when the harvesting unit 15 is tilted to a slower speed than the vehicle speed when the harvesting unit 15 is not tilted. This makes it possible to shorten the travel distance when the harvesting unit 15 is tilted.
[0104] In another embodiment of the present invention, the control device 11 may change the posture of the harvesting unit 15 while the combine harvester 1 is automatically traveling, or it may change the posture of the harvesting unit 15 while the combine harvester 1 is stopped.
[0105] In another embodiment of the present invention, the control device 11 may change the posture of the harvesting unit 15 in response to operator operation. For example, when an operator presses an operating lever or a predetermined operating button (not shown) on the operating terminal 3 provided on the combine harvester 1, the control device 11 changes the harvesting unit 15 to a preset first working height H1, second working height H2 (or first inclined state, second inclined state).
[0106] In the embodiments described above, a combine harvester 1 was given as an example of a work vehicle, but the work vehicle of the present invention is not limited to a combine harvester 1, and may be various work vehicles such as tractors, rice transplanters, and construction machinery. Furthermore, the work vehicle of the present invention may be a work vehicle that automatically travels (automatically steers) along a work path (for example, a straight path) and manually travels (manually steers) along a turning path, or a work vehicle that manually travels (manually steers) along a work path and automatically travels (automatically steers) along a turning path.
[0107] [Notes on the invention] The following is an overview of the inventions extracted from each of the embodiments described above. Note that the configurations and processing functions described below can be selected and combined as desired.
[0108] <Note 1> An operation control method for controlling the operation of a work unit provided on a work vehicle that travels along a target route while performing a predetermined operation on a work object, and discharges waste generated by the operation along the track of the target route, An operation control method that performs a stepwise change in the posture of the work unit based on at least one of the position of the discharged material and the position of the work object.
[0109] <Note 2> Based on at least one of the location of the discharged material and the location of the work object, the working height of the work unit is changed in stages. The operation control method described in Appendix 1.
[0110] <Note 3> When the work vehicle reaches a position a predetermined distance before the work start position of the work target, the work section is set to a first working height that is lower than the non-working height and higher than the height of the discharged material. When the work unit is set to the first working height and the work unit passes over the discharged material, the work unit is set to a second working height lower than the first working height. The operation control method described in Appendix 1 or 2.
[0111] <Note 4> The work section is set to the first working height before at least a portion of the width of the work section in the left-right direction overlaps with the position of the work object. After the entire width of the work section in the left-right direction has passed the location of the discharged material, or when the work section reaches the position furthest from the current position of the work vehicle in the direction of travel at the boundary of the discharge area of the discharged material, the work section is set to the second working height. The operation control method described in Appendix 3.
[0112] <Note 5> When the work vehicle reaches a position a predetermined distance before the end of work on the work target while the work unit is set to a second work height lower than the non-work height, the work unit is set to a first work height lower than the non-work height, higher than the height of the discharged material, and higher than the second work height. The operation control method described in any of the appendices 1 to 4.
[0113] <Note 6> After the entire width of the work section in the left-right direction has passed the position of the work object, the work section is set to a non-working height higher than the first working height. The operation control method described in Appendix 5.
[0114] <Note 7> When the work unit is set to the first work height, if one side of the width of the work unit in the left-right direction overlaps with the position of the discharged material and the other side overlaps with the position of the work target, the work unit is made to perform the work only on the other side. The operation control method described in any of the appendices 3 to 6.
[0115] <Note 8> When the work unit is set to the first working height, the vehicle speed of the work vehicle is set to a speed slower than the vehicle speed when the work unit is set to the second working height. The operation control method described in any of the appendices 3 to 7.
[0116] <Note 9> Based on at least one of the location of the discharged material and the location of the work object, the work unit is tilted in the left-right direction. The operation control method described in any of the appendices 1 to 8.
[0117] <Note 10> When one side of the width of the work section in the left-right direction coincides with the position of the discharged material and the other side coincides with the position of the work object, the work section is tilted such that the one side is lower than the non-working height and higher than the height of the discharged material, and the other side is lower than the one side. The operation control method described in Appendix 9.
[0118] <Note 11> The work unit is made to perform the work only on the other side. The operation control method described in Appendix 10.
[0119] <Note 12> After the entire width of the work section in the left-right direction has passed the position of the discharged material, the work section is returned to a horizontal position. The operation control method described in any of the appendices 9 to 11.
[0120] <Note 13> The vehicle speed of the work vehicle when the work section is inclined is set to a slower speed than the vehicle speed when the work section is not inclined. The operation control method described in any of the appendices 9 to 12. [Explanation of Symbols]
[0121] 10: Automated driving system 1: Combine harvester (work vehicle) 3: Operating terminal 11: Control device 15: Reaping section (working section) 40: Cutting height detection device 41: Main unit of the device 42: Ground body 111: Driving section 112: Acquisition Processing Unit 113: Operation Processing Unit A21 :Starting end A22: Termination B1: Straw (exhaust material) F: Field (work area) F1: Outer area F2: Inner circumference region R: Target path R1: Work Route W1: Working width H: Working height H0: Non-working height H1: First working height H2: Second working height H3: Third working height K1: Section K2: Section P1: Intersection P2: Intersection P3: Intersection P4: Intersection
Claims
1. An operation control method for controlling the operation of a work unit provided on a work vehicle that travels along a target route while performing a predetermined operation on a work object, and discharges waste generated by the operation along the track of the target route, When the work vehicle reaches a position a predetermined distance before the starting position of the work target, the work section is set to a first working height that is lower than the non-working height and higher than the height of the discharged material. An operation control method for setting the work unit to a second work height lower than the first work height when the work unit passes over the discharged material while the work unit is set to the first work height.
2. The work section is set to the first working height before at least a portion of the width of the work section in the left-right direction overlaps with the position of the work object. The work unit is set to the second working height after the entire width of the work unit in the left-right direction has passed the location of the discharged material, or when the work unit reaches the position furthest from the current position of the work vehicle in the direction of travel at the boundary of the discharge area of the discharged material. The operation control method according to claim 1.
3. An operation control method for controlling the operation of a work unit provided on a work vehicle that travels along a target route while performing a predetermined operation on a work object, and discharges waste generated by the operation onto the track of the target route, Based on at least one of the location of the discharged material and the location of the work object, the posture of the work unit is changed in stages. An operation control method for setting the work unit to a first work height that is lower than the non-work height, higher than the height of the discharged material, and higher than the second work height, when the work vehicle reaches a position a predetermined distance before the end position of the work on the work object while the work unit is set to a second work height that is lower than the non-work height.
4. After the entire width of the work section in the left-right direction has passed the position of the work object, the work section is set to a non-working height higher than the first working height. The operation control method according to claim 3.
5. When the work unit is set to the first work height, if one side of the width of the work unit in the left-right direction coincides with the position of the discharged material and the other side coincides with the position of the work target, the work unit is made to perform the work only on the other side. The operation control method according to claim 1 or 3.
6. When the work unit is set to the first working height, the vehicle speed of the work vehicle is set to a speed slower than the vehicle speed when the work unit is set to the second working height. The operation control method according to claim 1 or 3.
7. Based on at least one of the location of the discharged material and the location of the work object, the work unit is tilted in the left-right direction. The operation control method according to claim 1.
8. When one side of the width of the work section in the left-right direction coincides with the position of the discharged material and the other side coincides with the position of the work object, the work section is tilted such that the one side is lower than the non-working height and higher than the height of the discharged material, and the other side is lower than the one side. The operation control method according to claim 7.
9. The work unit is made to perform the work only on the other side. The operation control method according to claim 8.
10. After the entire width of the work section in the left-right direction has passed the position of the discharged material, the work section is returned to a horizontal position. The operation control method according to any one of claims 7 to 9.
11. The vehicle speed of the work vehicle when the work section is inclined is set to a slower speed than the vehicle speed when the work section is not inclined. The operation control method according to any one of claims 7 to 9.
12. An operation control system for controlling the operation of a work unit installed on a work vehicle that travels along a target route while performing a predetermined operation on a work object, and discharges the waste generated by the operation along the track of the target route, When the work vehicle reaches a position a predetermined distance before the starting position of the work target, the work section is set to a first working height that is lower than the non-working height and higher than the height of the discharged material. An operation control system comprising an operation processing unit that sets the work unit to a second work unit lower than the first work unit when the work unit passes the discharged material while the work unit is set to the first work unit.
13. An operation control program for controlling the operation of a work unit installed in a work vehicle that travels along a target route while performing predetermined work on a work object, and discharges waste generated by the work along the track of the target route, When the work vehicle reaches a position a predetermined distance before the starting position of the work target, the work section is set to a first working height that is lower than the non-working height and higher than the height of the discharged material. An operation control program for causing one or more processors to set the work unit to a second work unit lower than the first work unit when the work unit passes over the discharged material while the work unit is set to the first work unit.
14. An operation control system for controlling the operation of a work unit provided on a work vehicle that travels along a target route while performing a predetermined operation on a work object, and discharges waste generated by the operation onto the track of the target route, The operation processing unit is provided to change the posture of the work unit in stages based on at least one of the position of the discharged material and the position of the work object, The operation processing unit is an operation control system that, when the work vehicle reaches a position a predetermined distance before the end position of the work on the work target while the work unit is set to a second work height lower than the non-work height, sets the work unit to a first work height lower than the non-work height, higher than the height of the discharged material, and higher than the second work height.
15. An operation control program for controlling the operation of a work unit provided in a work vehicle that travels along a target route while performing a predetermined operation on a work object, and discharges waste generated by the operation onto the track of the target route, Based on at least one of the location of the discharged material and the location of the work object, the posture of the work unit is changed in stages. When the work vehicle reaches a position a predetermined distance before the end of work on the work target while the work unit is set to a second work height lower than the non-work height, the work unit is set to a first work height lower than the non-work height, higher than the height of the discharged material, and higher than the second work height. An operation control program that causes one or more processors to perform an action.
Citation Information
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