Electric power control device
11529940 · 2022-12-20
Assignee
Inventors
Cpc classification
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
B60L1/003
PERFORMING OPERATIONS; TRANSPORTING
B60L58/16
PERFORMING OPERATIONS; TRANSPORTING
B60L50/60
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/64
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L7/10
PERFORMING OPERATIONS; TRANSPORTING
B60L58/14
PERFORMING OPERATIONS; TRANSPORTING
B60W10/26
PERFORMING OPERATIONS; TRANSPORTING
B60L50/16
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60L50/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is an electric power control device that allows a work vehicle to travel while carrying out a utility work smoothly. An electric power control device includes an operational state information acquisition section for acquiring operational state information indicative of an operational state of a work vehicle, a battery information acquisition section for acquiring battery information indicative of a state of a battery which is mounted on the work vehicle, a storage section for storing in advance operational mode information, a travel unit that causes the work vehicle to travel, a distributed electric power calculation section for calculating distributed electric powers to be distributed to the travel unit and an implement unit that effects the utility work respectively, and an instruction section for instructing the distributed electric powers to a travel control section that controls the travel unit and an implement control section that controls the implement unit, respectively.
Claims
1. An electric power control device for controlling electric power consumption of a work vehicle that travels while carrying out a utility work, the control device comprising: a first sensor for acquiring an output value of a drive motor as one type of operational state information indicative of an operational state of the drive motor, the drive motor driving a drive wheel for causing the work vehicle to travel; a second sensor for acquiring an output value of a mower motor as another type of the operational state information indicative of an operational state of the mower motor, the mower motor driving a mower unit for carrying out the utility work; a third sensor for acquiring battery information indicative of a state of a battery which is mounted on the work vehicle, the state of the battery including at least a charged state of the battery and a permissible discharge amount of the battery corresponding to an upper limit less than a maximum possible discharge amount of the battery; a memory for storing in advance operational mode information specifying possible operational modes of the work vehicle, including at least a state in which the work vehicle travels without carrying out the utility work, and a state in which the work vehicle travels with carrying out the utility work; and a controller for changing distributed electric powers of electric power outputted from the battery to be distributed respectively to the drive wheel and the mower unit based on the operational state information regarding the utility work and the traveling, the battery information, and the operational mode information, so that the permissible discharge amount is allocated to the drive wheel and the mower unit at an appropriate ratio, and for instructing the distributed electric powers to the drive motor that controls the drive wheel and the mower motor that controls the mower unit, respectively.
2. The electric power control device of claim 1, wherein the controller changes the distributed electric powers with using at least one of a map which shows relationship between energy outputtable from the battery and system electric power consumption of the work vehicle and a map that shows relationship between the operational state of the mower unit and the charged state of the battery, in view of the upper limit of the electric power suppliable to the drive wheel and the mower unit.
3. The electric power control device of claim 1, wherein: the operational state information further comprises display information indicative of a display state of an instrument panel of the work vehicle; and the controller changes also the distributed electric power to be distributed to the instrument panel and instructs the distributed electric power also to a display control unit which controls display state of the instrument panel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(6) An electric power control device according to the present invention is configured to be able to appropriately distribute electric power outputted from a battery. Next, an electric power control device 9 (see
(7)
(8) As shown in
(9) The drive wheels 2 are driven by a travel control unit 3 whose operation is controlled by a travel control device 1 and the mower unit 13 has its operation controlled by a mower control device 5. Here, the caster wheels 4 consist of a left caster wheel 4a and a right caster wheel 4b. The drive wheels 2 consist of a left drive wheel 2a and a right drive wheel 2b.
(10) Forwardly of the driver's seat 11, there is provided a floor plate as a “footrest” for the driver, from which a brake pedal 14 protrudes. On the opposed sides of the driver's seat 11, a left maneuvering lever 6a and a right maneuvering lever 6b are disposed. Further, on the lateral side of the driver's seat 11, there is provided an electric operational panel 18 including switch buttons, switch levers, etc. of the electric system. On the electric operational panel 18, there are also disposed a mower switch for activating the mower unit 13 and the above-described instrument panel 99. Incidentally, the left maneuvering lever 6a and the right maneuvering lever 6b will be collectively referred to as “maneuvering levers 6” hereinafter, unless distinction therebetween is particularly needed.
(11) In the instant embodiment, the left drive wheel 2a and the right drive wheel 2b use rotational electric powers from a left motor 21 and a right motor 22, respectively as electric power source thereof. The left motor 21 receives electric power via a left electric power supply section 41 constituting an inverter 7 and the right motor 22 receives electric power via a right electric power supply section 42 also constituting the inverter 7. By varying the respectively supplied electric powers, it is possible to change at least one of a rotational speed and a torque. Rotational speeds (circumferential speeds) of the left drive wheel 2a and the right drive wheel 2b can be made different from each other. And, with a rotational speed difference between the left drive wheel 2a and the right drive wheel 2b, a turning of the riding lawnmower is effected.
(12) The travel control unit 3 is a functional section for controlling traveling and turning of the riding electric lawnmower and in the instant embodiment, this unit 3 is constituted of the left motor 21, the right motor 22 and the inverter 7 (in particular, the left electric power supply section 41 and the right electric power supply section 42). The inverter 7 supplies electric power to the left motor 21 and the right motor 22, respectively. The electric power outputted from the inverter 7 corresponds to a speed instruction value (a target value) calculated by the travel control device 1. But, depending on the traveling load, if the actual rotational speed (the actual speed) becomes smaller than the target value, the electric power will be corrected to increase the motor output torque. On the other hand, if the actual rotational speed (the actual speed) becomes greater than the target value, the electric power will be corrected to decrease the motor output torque.
(13) The mower unit 13 includes three rotary blades 131a, 131b, 131c corresponding to mower blades. The rotary blades 131a, 131b, 131c respectively rely on mower motors 130a, 130b, 130c as the drive source thereof. The mower motors 130a, 130b, 130c receive electric powers via a mower electric power supply section 43 which also constitutes the inverter 7. The mower electric power supply section 43 is controlled by the mower control device 5. This mower control device 5 constitutes a control device 100, together with the travel control device 1 and the electric power control device 9.
(14) An operational amount (a pivot angle) of the left maneuvering lever 6a is detected by a left maneuvering angle detection sensor 80a. An operational amount (a pivot angle) of the right maneuvering lever 6b is detected by a right maneuvering angle detection sensor 80b. Further, an operational angle of the brake pedal 14 is detected by a brake detection sensor 80c. An operation of the mower switch is detected by a mower sensor 80d. Further, a rotational speed of the left drive wheel 2a is detected by a left rear wheel rotation detection sensor 70a and a rotational speed of the right drive wheel 2b is detected by a right rear wheel rotation detection sensor 70b. Rotational speeds of the mower motors 130a, 130b, 130c are detected by rotation sensors 100a, 100b, 100c. Results of detections by the respective sensors are transmitted to the control device 100 to be used by this control device 100 when needed.
(15) The travel control device 1 calculates target rotational speeds for the left drive wheel 2a and the right drive wheel 2b, based on operational amounts of the maneuvering levers 6 detected by the left maneuvering angle detection sensor 80a and the right maneuvering angle detection sensor 80b. Further, from the respective target rotational speeds, electric power amounts to be supplied respectively to the left motor 21 and the right motor 22 are calculated. Then, the travel control device 1 drives the left motor 21 and the right motor 22 in accordance with these electric power amounts. Here, depending on a traveling condition, it may happen that the actual rotational speeds of the drive wheels 2 do not agree with the target rotational speeds controlled based on the operational amounts of the maneuvering levers 6. In such case, the travel control device 1, by using the known feedback control technique, will correct the above-described electric power amounts so as to bring the actual rotational speeds of the drive wheels 2 into agreement with the target rotational speeds based on the operational amounts of the maneuvering levers 6. In the course of this, the travel control device 1 calculate required drive torques (to be referred to shortly as “required torques” hereinafter) required of the left motor 21 and the right motor 22. The “required torque” means an amount of torque required of the left motor 21 or the right motor 22 in order to bring the actual rotational speed into agreement with the target rotational speed, in case the actual rotational speed fails to reach the target rotational speed. Thus, the travel control device 1 will derive such required torques, from the target rotational speeds for the left drive wheel 2a and the right drive wheel 2b based on the detection results of the left maneuvering angle detection sensor 80a and the right maneuvering angle detection sensor 80b and the actual rotational speeds of the left drive wheel 2a and the right drive wheel 2b obtained by the left rear wheel rotation detection sensor 70a and the right rear wheel rotation detection sensor 70b. Then, the travel control device 1 corrects the electric power amounts, based on the calculated required torques.
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(17) The operational state information acquisition section 31 acquires operational state information indicative of an operational state of the work vehicle. In the instant embodiment, the work vehicle is the riding electric lawnmower. The operational state of the work vehicle refers to an operational state of the respective functional section of the riding electric lawnmower and the operational state information refers to information indicative of an operational state of such respective functional section.
(18) In the instant embodiment, the operational state information corresponds to travel unit information indicative of an operational state of the travel control unit 3 (an example of “travel unit”) and implement unit information indicative of an operational state of the mower control unit 8 (an example of “implement unit”). The travel control unit 3, as described hereinbefore, corresponds to the left motor 21 and the right motor 22 as well as the left electric power supply section 41 and the right electric power supply section 42 shown in
(19) Further, advantageously, the operational state information includes also display information indicative of display state of the instrument panel 99 of the riding electric lawnmower. On the instrument panel 99, information such as a traveling speed of the riding electric lawnmower, rotational speeds of the mower blades, etc. will be displayed. This instrument panel 99 allows adjustments of its brightness and luminance and information indicative of such brightness and luminance corresponds to the display information.
(20) More particularly, the above-described operational state information corresponds to e.g. a traveling output of the riding electric lawnmower (outputs respectively of the left motor 21 and the right motor 22 shown in
(21) The operational state information acquisition section 31 acquires such operational state information from the respective functional sections. Incidentally, these information can be acquired alternatively from detection results of further sensors which can be provided separately from, i.e. in addition to, the sensors described above. The operational state information acquired by the operational state information acquisition section 31 will be transmitted to the distributed electric power calculation section 34 to be described later.
(22) The battery information acquisition section 32 acquires battery information indicative of a state of the battery 20 (see
(23) The storage section 33 stores therein in advance operational mode information specifying possible operational modes of the work vehicle. Here, “possible operational modes of the work vehicle” means operational modes assumed to be taken by the riding electric lawnmower in its traveling, including specifically and at least a state of traveling without involving any lawn mowing work by the riding electric lawnmower and a state of traveling involving lawn mowing work. The storage section 33 stores such operational mode information of such operational states in advance. The storage section 33 may store other operational mode information other than the operational mode information of such assumed operational states.
(24) The distributed electric power calculation section 34 calculates distributed electric power of the electric power outputted from the battery 20 to be distributed respectively to the travel unit that causes the work vehicle to travel and the implement unit that carries out a utility work, based on the operational state information, the battery information and the operational mode information. The operational state information is transmitted from the operational state information acquisition section 31. The battery information is transmitted from the battery information acquisition section 32. The operational mode information is stored in the storage section 33 and referred to therein. The travel unit that causes the work vehicle to travel refers to the travel control unit 3. The implement unit that carries out a work refers to the mower control unit 8 for carrying out a lawn mowing work.
(25) The distributed electric power calculation section 34 distributes electric powers according to the order of priorities given to the respective operational modes. The distribution of the electric power can be effected with using a plurality of maps or can be effected with using a calculation formula also. Further alternatively, it is possible to determine the respective information constituting the above-described operational state information and battery information based on a predetermined condition and to change the distributed electric power based solely on the result of such determination.
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(27) As shown in
(28) Further, in the instant embodiment, as described above, the distributed electric power calculation section 34 calculates also a distributed electric power to be distributed to the instrument panel 99. Thus, the instruction section 35 instructs a distributed electric power also to the display control unit 10 that controls display of the instrument panel 99. The display control unit 10 means the functional section which adjusts brightness and luminance of the instrument panel 99.
(29) More particularly, the instruction section 35 provides motor drive instructions and output limiting instructions (e.g. electric power running/regeneration energy or state flag) to the left electric power supply section 41 (see
(30) Further, the instruction section 35 provides motor drive instructions and output limiting instructions to the mower electric power supply section 43 (see
(31) Moreover, the instruction section 35 provides an operational instruction (an accessory operation instruction) to the display control unit 10 that controls the instrument panel 99. With this, the instrument panel 99 will be controlled.
(32) With the above-described arrangements, it becomes possible to limit the rotational speeds or the torques of the respective motors with use of a map, in accordance with an amount of electric power stored in the battery 20. Therefore, it is possible to prevent the situation of traveling of the riding electric lawnmower being disabled due to electric power shortage. Incidentally, the electric power control device 9 can be configured to change the instructions stepwise to the respective functional sections described above.
Further Embodiments
(33) In the foregoing embodiment, there was explained as an example the case in which the maneuvering levers 6 are mounted on the vehicle body 15 of the riding electric lawnmower. However, the riding electric lawnmower can be configured to be capable of remote control via a remote controller.
(34) In the foregoing embodiment, it was explained that the operational state information refers to the travel unit information and the implement unit information. However, the operational state information can be one of the travel unit information and the implement unit information or can be any information other than the travel unit information and the implement unit information.
(35) In the foregoing embodiment, it was explained that the operational state information includes the display information indicative of the display state of the instrument panel 99. However, the operational state information can be configured not to include the display information indicative of the display state of the instrument panel 99. Further alternatively, the operational state information can be configured to include information other than the display information indicative of the display state of the instrument panel 99 (e.g. operational information of an air conditioner, operational information of an audio device, need for alarm for various instruments, etc.)
(36) In the foregoing embodiment, the riding electric lawnmower was cited as an example of the work vehicle on which the electric power control device 9 is to be mounted. However, the work vehicle can be any other vehicle.
INDUSTRIAL APPLICABILITY
(37) The present invention is applicable to an electric power control device that controls electric power consumption of a work vehicle which travels while carrying out a utility work.
DESCRIPTION OF SIGNS
(38) 1: travel control device (travel unit control section) 3: travel control unit (travel unit) 5: mower control device (implement unit control section) 8: mower control unit (implement unit) 9: electric power control device 10: display control unit 20: battery 31: operational state information acquisition section 32: battery information acquisition section 33: storage section 34: distributed electric power calculation section 35: instruction section