electric work vehicle

The electric work vehicle simulates engine-powered vehicle behavior through a control unit that mimics clutch and gear changes, addressing driver incongruity and enhancing comfort in electric vehicles without a physical clutch.

JP7808972B2Active Publication Date: 2026-01-30KUBOTA CORP
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2022012239
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-28
Publication Date
2026-01-30
Estimated Expiration
2042-01-28

AI Technical Summary

Technical Problem

Drivers accustomed to engine-powered work vehicles experience a sense of incongruity due to different vehicle body behavior during clutch operations and gear changes in electric work vehicles lacking a conventional clutch-based transmission mechanism.

Method used

An electric work vehicle with a control unit that simulates the behavior of an engine-powered vehicle by controlling the electric motor in response to manual operating tools, mimicking clutch and gear changes, even without a physical clutch mechanism, through a pseudo-clutch operating device.

Benefits of technology

Enables drivers to experience familiar driving conditions by simulating engine-powered vehicle behavior during clutch and gear changes, enhancing driver comfort and familiarity with electric work vehicles.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007808972000001
    Figure 0007808972000001
  • Figure 0007808972000002
    Figure 0007808972000002
  • Figure 0007808972000003
    Figure 0007808972000003
Patent Text Reader

Abstract

To provide an electric work vehicle that enables a driver to physically feel a travelling state similar to that felt when driving a conventional work vehicle with an engine equipped with a transmission mechanism, during operation of changing output power from a transmission.SOLUTION: The electric work vehicle comprises: an electric motor M; travelling devices 10 and 11; a transmission 16 that transmits power from the electric motor M to the travelling devices 10 and 11; a control unit 5 that controls behavior of the electric motor M; and a manual operation tool 40 that gives the control unit a change instruction requiring change of output power from the transmission 16 to 5. On the basis of the change instruction, the control unit 5 controls the electric motor M in such a manner that behavior of the electric motor M simulates behavior of a work vehicle with an engine an engine, the behavior of the work vehicle being performed during operation of changing the output power.SELECTED DRAWING: Figure 6
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention is a battery-powered electric work vehicle in which traveling power is provided by a motor driven by electric power supplied from a battery. [Background technology]

[0002] Patent Document 1 discloses an electric work vehicle that uses a motor instead of an engine as a power source. The transmission is equipped with a continuously variable transmission called an HMT (Hydraulic Mechanical Transmission), and a transmission consisting of a clutch and a gear-type transmission mechanism.

[0003] Patent Document 2 discloses a battery-powered electric work vehicle that includes a work implement, a battery, a motor driven by power supplied from the battery, a transmission, and a traveling device (front and rear wheels). The transmission includes a continuously variable transmission called an HST (Hydraulic Static Transmission), which changes the speed of the driving force received from the motor and transmits it to the left and right rear wheels. The motor basically rotates at a constant speed, and the rotational speed of the rear wheels, i.e., vehicle speed, is changed by changing the swash plate angle of the HST. This makes it possible to omit a transmission mechanism using a clutch. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-141955 [Patent Document 2] Patent Publication No. 2021-104768 Summary of the Invention [Problem to be solved by the invention]

[0005] Aiming for a carbon-neutral society in which greenhouse gas emissions are reduced to zero overall, attention has been drawn in recent years to electric work vehicles that use electric motors instead of engines as their power source, as shown in Patent Document 1 and Patent Document 2. Unlike engines, electric motors have the advantage of maintaining constant torque over most of the rotation range, and can output stable rotational power from low to high speeds.

[0006] However, most drivers of electric work vehicles are accustomed to driving engine-powered work vehicles that use an engine as a power source and perform gear changes using a clutch. Therefore, with the electric work vehicles described above, the vehicle body behavior when performing clutch operations and gear changes is different from that of engine-powered work vehicles, which can cause a sense of incongruity. To address this sense of incongruity for drivers, there is a demand for an electric work vehicle that allows drivers to experience driving conditions similar to those of an engine-powered work vehicle equipped with a conventional gear change mechanism when changing the power output from the transmission. [Means for solving the problem]

[0007] The electric work vehicle according to the present invention comprises an electric motor, a traveling device, and a power supply for supplying power from the electric motor to the traveling device. and the work equipment via the PTO shaft a control unit for controlling the behavior of the electric motor; To the PTO shaft a manual operating tool for giving a change command to the control unit to change the output power of the engine; The control unit controls the electric motor based on the change command. Through simulated operations, When changing the engine work vehicle of the car body Behavior Give to the driver The electric motor is controlled so as to

[0008] With this configuration, when the driver operates the manual operating tool that issues a change command to the control unit requesting a change in the output power from the transmission (such as slowing down, increasing speed, or engaging or disengaging the PTO), the electric motor behaves in a manner that simulates the behavior of an engine-powered work vehicle when such a change is made. Whether this manual operating tool is a dummy operating tool that does not directly change the output power from the transmission, or a real operating tool that actually changes the output power from the transmission, by operating this manual operating tool, the driver can experience driving and working conditions similar to those of an engine-powered work vehicle equipped with a conventional transmission mechanism when making a change.

[0009] Even in an electric work vehicle not equipped with a clutch-based transmission mechanism, by operating a pseudo-clutch operating device when changing the output power from the transmission, it is possible to simulate the vehicle body behavior experienced when changing the transmission output power with a conventional engine-powered work vehicle equipped with a clutch transmission mechanism by controlling the electric motor. In this case, if the change operating device for changing the output power from the transmission also functions as a pseudo-clutch operating device, it is convenient because there is no need to physically provide a pseudo-clutch operating device. Therefore, in one preferred embodiment of the present invention, the manual operating device is a change operating device for changing the output power of the transmission, and the change operating device also functions as a pseudo-clutch operating device. The change command issued by the change operating device also includes a pseudo-clutch operating command, and the control unit controls the electric motor based on the change command and the pseudo-clutch operating command. In this configuration, for example, when the driver operates the change operating device to change the vehicle speed, a pseudo-clutch operating command is issued to the control unit along with a gear change command as a change command. The control unit performs gear shift control based on the gear shift command, and also controls the electric motor based on the pseudo clutch operation command to simulate the behavior of the vehicle body that occurs during clutch gear shifting (gear shifting accompanied by clutch operation) in an engine-powered work vehicle equipped with a clutch gear shifting mechanism. Note that in some cases, the change operation tool and the pseudo clutch operation tool may be provided separately.

[0010] In an engine-powered work vehicle equipped with a conventional clutch transmission mechanism, the vehicle body behavior experienced during clutch shifting varies from person to person, and preferred behavior also varies from person to person. For this reason, it is preferable to provide a plurality of simulated behavior modes that create a simulated vehicle body behavior (electric motor behavior) based on a pseudo-clutch operation command, and select one based on the driver's preference and driving conditions. Of course, it is also preferable to be able to select a mode in which the vehicle body behavior based on the pseudo-clutch operation command is not simulated. For this reason, in one preferred embodiment of the present invention, the control unit is provided with a plurality of different simulated behavior modes for simulating the behavior of the electric motor based on the change command.

[0011] Some electric work vehicles use a motor instead of an engine as a power source, but the transmission is equipped with a transmission device consisting of a conventional clutch and gear-type speed change mechanism. Applying the present invention to such electric work vehicles also achieves the above-described effects. Therefore, in one preferred embodiment of the present invention, the manual operating device includes a speed change device that operates a speed change mechanism equipped in the transmission, the change command from the speed change device is a speed change command, and the control unit controls the electric motor based on the speed change command and sends a control signal to an actuator of the speed change mechanism. Furthermore, in another preferred embodiment of the present invention, the manual operating device includes a clutch operating device that operates a clutch equipped in the transmission, the change command from the clutch operating device is a clutch operation command, and the control unit controls the electric motor based on the clutch operation command and sends a control signal to an actuator of the clutch.

[0012] Furthermore, many of the working devices attached to work vehicles are driven by power (PTO power) branched off from the transmission, and are equipped with a PTO clutch that switches the PTO power transmission on and off. In engine-powered work vehicles, operating the PTO clutch causes a momentary load fluctuation in the engine, so the driver often feels the vehicle behavior and performs appropriate work based on that. Therefore, even when operating such a PTO clutch, vehicle behavior familiar to engine-powered work vehicles is required. For this reason, in one preferred embodiment of the present invention, the manual operation device includes a PTO clutch operating device that operates a PTO clutch equipped on the transmission, and the control unit controls the electric motor and sends a control signal to the actuator of the PTO clutch based on the change command from the PTO clutch operating device. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 2 is a left side view of the tractor. [Figure 2] FIG. 2 is a left side view showing the arrangement of an inverter and the like. [Figure 3] FIG. 2 is a diagram illustrating a flow of power transmission. [Figure 4] FIG. 2 is a diagram illustrating a configuration of a transmission. [Figure 5] FIG. 2 is a functional block diagram showing a configuration related to an operation control system. [Figure 6] FIG. 2 is a functional block diagram showing a configuration related to a pseudo clutch control system. DETAILED DESCRIPTION OF THE INVENTION

[0014] An embodiment of the present invention will be described with reference to the drawings. In the following description, unless otherwise specified, the direction of arrow F in the drawings will be referred to as "front," the direction of arrow B as "rear," the direction of arrow L as "left," and the direction of arrow R as "right." Furthermore, the direction of arrow U in the drawings will be referred to as "up," and the direction of arrow D as "down."

[0015] [Overall configuration of the tractor] A tractor, which is an example of an electric work vehicle, will be described as one embodiment. As shown in Fig. 1, the tractor has left and right front wheels 10, left and right rear wheels 11, and a cover member 12 as a traveling device.

[0016] The tractor also includes a machine body frame 2 and a driving section 3. The machine body frame 2 is supported by left and right front wheels 10 and left and right rear wheels 11.

[0017] The cover member 12 is disposed at the front of the vehicle body, and the driving section 3 is provided behind the cover member 12. In other words, the cover member 12 is disposed in front of the driving section 3.

[0018] The driver's section 3 has a protective frame 30, a driver's seat 31, and a steering wheel 32. A driver can sit in the driver's seat 31. This allows the driver to get into the driver's section 3. The left and right front wheels 10 are steered by operating the steering wheel 32. The driver can perform various driving operations using the driver's section 3.

[0019] The tractor is equipped with a battery 4, which is a traction battery. The cover member 12 is configured to be swingable about an opening / closing axis Q that extends in the left-right direction of the vehicle body. This allows the cover member 12 to be opened and closed. When the cover member 12 is in a closed state, the battery 4 is covered by the cover member 12.

[0020] As shown in Fig. 2, the tractor includes an inverter 14 and an electric motor (hereinafter simply referred to as the motor) M. The battery 4 supplies power to the inverter 14. The inverter 14 converts DC power from the battery 4 into AC power and supplies it to the motor M. The motor M is then driven by the AC power supplied from the inverter 14.

[0021] As shown in Figures 2 and 3, the tractor is equipped with a transmission 16 that transmits power from a motor M to front wheels 10 and left and right rear wheels 11, which are travelling devices. A hydrostatic continuously variable transmission (hereinafter referred to as HST 15) is arranged in the front stage of the transmission 16. The HST 15 has an HST pump 15a and an HST motor 15b. The HST pump 15a is driven by rotational power from the motor M. When the HST pump 15a is driven, rotational power is output from the HST motor 15b. The HST 15 is configured so that the rotational power between the HST pump 15a and the HST motor 15b can be changed in forward and reverse directions and continuously.

[0022] The rotational power output from the HST motor 15b is distributed to the left and right rear wheels 11 via a gear transmission mechanism 16A located in the middle section of the transmission 16 and a rear wheel differential gear mechanism 16B also located in the middle section of the transmission 16. Since this tractor is a four-wheel drive type, the rotational power from the gear transmission mechanism 16A of the transmission 16 is distributed to the left and right front wheels 10 via the front wheel drive shaft 9 and the front wheel differential gear mechanism.

[0023] 2, the tractor is also equipped with a mid PTO shaft 17 and a rear PTO shaft 18. Rotational power output from the motor M is distributed by the transmission 16 to the HST pump 15a, the mid PTO shaft 17, and the rear PTO shaft 18. This causes the mid PTO shaft 17 and the rear PTO shaft 18 to rotate.

[0024] The work implement attached to the mid PTO shaft 17 or the rear PTO shaft 18 is driven by the rotational power of the mid PTO shaft 17 or the rear PTO shaft 18. For example, as shown in FIG. 2 , in this embodiment, a brush cutting device 19 is connected to the mid PTO shaft 17, and the brush cutting device 19 is driven by the rotational power of the mid PTO shaft 17.

[0025] If a working implement is connected to the mid PTO shaft 17 or the rear PTO shaft 18, the working implement is driven by the rotational power of the mid PTO shaft 17 or the rear PTO shaft 18. For example, as shown in FIG. 2, in this embodiment, a brush cutter 19 is connected to the mid PTO shaft 17. The brush cutter 19 is driven by the rotational power of the mid PTO shaft 17. Furthermore, although not shown, a tiller is connected to the rear PTO shaft 18 when plowing work is to be performed.

[0026] [Transmission structure] 4, the transmission 16 includes a gear transmission mechanism 16A, which is a speed change mechanism, a rear wheel differential gear mechanism 16B, and a PTO mechanism 16C. The PTO mechanism 16C includes a first shaft 21, a first gear mechanism 22, a second gear mechanism 23, a second shaft 24, a third gear mechanism 25, a first clutch 26, and a second clutch 27. The first clutch 26 and the second clutch 27 function as PTO clutches, and each of them is configured to be able to change its state between an on state in which power is transmitted and a off state in which power is not transmitted.

[0027] An output shaft MA of the motor M is connected to a first shaft 21. The first shaft 21 is connected to a rotating shaft of the HST pump 15a. When the first clutch 26 is engaged, rotational power is transmitted from the first shaft 21 to the first gear mechanism 22. When the second clutch 27 is engaged, rotational power is transmitted from the first shaft 21 to the second shaft 24.

[0028] The rotational power transmitted to the first gear mechanism 22 is transmitted to the mid PTO shaft 17 via the second gear mechanism 23. The rotational power transmitted to the second shaft 24 is transmitted to the rear PTO shaft 18 via the third gear mechanism 25.

[0029] The rotational power transmitted to the HST pump 15a is hydraulically changed in the HST 15 and output from the HST motor 15b. The rotational power output from the HST motor 15b is transmitted to the gear transmission mechanism 16A via the third shaft 28. The rotational power transmitted to the gear transmission mechanism 16A is changed in speed by the gear transmission mechanism 16A and distributed to the front wheel drive shaft 9 and the rear wheel differential gear mechanism 16B. The left and right front wheels 10 are driven by the rotational power transmitted to the front wheel drive shaft 9. The left and right rear wheels 11 are driven by the rotational power transmitted to the rear wheel differential gear mechanism 16B.

[0030] [Operation control system] As shown in Figure 5, this tractor is equipped with a control unit 5 that controls the behavior of the motor M and changes in the transmission state of the transmission 16, and manual operators 40 that issue change commands to the control unit 5 to request changes in the output power from the transmission 16. The manual operators 40 include an accelerator operator 41, a work operator 43, and a travel operator 42. The manual operators 40 are not particularly limited, and may be, for example, a lever or a button. The manual operators 40 are provided, for example, on the driving section 3.

[0031] The control unit 5 has a motor control unit 51, a travel control unit 52, and an operation control unit 53.

[0032] When the accelerator operation device 41 is manually operated, a signal corresponding to the operation is sent to the motor control unit 51. The motor control unit 51 controls the inverter 14 based on the signal, thereby controlling the output rotation speed of the motor M. In other words, the motor control unit 51 controls the output rotation speed of the motor M in response to the manual operation of the accelerator operation device 41.

[0033] If the travel operating device 42 is a speed change device that adjusts the pump swash plate angle of the HST 15, when this speed change device is manually operated, a signal corresponding to the operation is sent to the travel control unit 52. The travel control unit 52 controls the pump swash plate angle of the HST pump 15a based on the signal. When the pump swash plate angle changes, the gear ratio of the HST 15 changes. In other words, the travel control unit 52 controls the gear state of the HST 15 in response to the manual operation of the travel operating device 42.

[0034] When the pump swash plate 58 is in the neutral state, the HST 15 is in a state where rotational power is not output from the HST motor 15b. The HST 15 outputs rotational power in the forward and reverse directions to the left and right front wheels 10 and the left and right rear wheels 11 according to the angle of the pump swash plate 58. That is, the HST 15 is configured to be able to output rotational power in the forward and reverse directions to the left and right front wheels 10 and the left and right rear wheels 11 according to manual operation of the travel operating device 42.

[0035] If the traveling operation device 42 is a speed change device that switches between high-speed and low-speed speed change sections of the gear transmission mechanism 16A, the speed change device of the gear transmission mechanism 16A is controlled in response to manual operation of the traveling operation device 42. The speed change device is a type of change device used to change the output power of the transmission 16.

[0036] When the work operating tool 43, which functions as a PTO clutch operating tool, is manually operated, a signal corresponding to the operation is sent to the work control unit 53. Based on the signal, the work control unit 53 sends control signals to the actuators of the first clutch 26 and the second clutch 27, controlling the on / off states of the first clutch 26 and the second clutch 27. In this way, the work control unit 53 switches the states of the mid PTO shaft 17 and the rear PTO shaft 18 between a rotating state and a non-rotating state.

[0037] [Pseudo clutch control] 6, the motor control unit 51 includes a pseudo-clutch behavior control unit 511 and a pseudo-behavior table 512. The pseudo-clutch behavior control unit 511 controls the motor M so that it behaves like a pseudo-clutch, based on a change command requesting a change in the output power from the transmission 16, in this case a change in the rotational speed, by the traveling operation device 42 and the work operation device 43, which are the manual operation device 40.

[0038] The pseudo-clutch behavior is the vehicle body behavior that is produced in this tractor by controlling the motor M to simulate the vehicle body behavior (acceleration / deceleration, etc.) that may occur in an engine-powered work vehicle during a change operation when the travel operating tool 42 changes gears on the HST 15 or the gear transmission mechanism 16A, or when the work operating tool 43 switches power transmission to the PTO mechanism 16C. Although the gear change in the HST 15 does not include a clutch operation, the simulated vehicle body behavior that occurs during a change operation that does not include a clutch operation is also referred to as pseudo-clutch behavior in this specification.

[0039] For example, if the travel operating device 42 is a speed change device that changes the gear position of the gear transmission mechanism 16A, this speed change device also functions as a pseudo-clutch operating device. In other words, the change command generated by operating this speed change device includes a gear change command and a pseudo-clutch operation command. Based on the gear change command, the travel control unit 52 of the control unit 5 drives the gear change actuator of the gear transmission mechanism 16A to change the gear position of the gear transmission mechanism 16A to the desired gear position. At the same time, the pseudo-clutch behavior control unit 511 of the control unit 5 controls the motor M to simulate the vehicle body behavior that may occur during a gear change operation in an engine-powered work vehicle.

[0040] Furthermore, when the work operating tool 43 is a PTO switching tool that switches power transmission for the PTO mechanism 16C using the first clutch 26 or the second clutch 27, this PTO switching tool also functions as a pseudo-clutch operating tool. In other words, the change command generated by operating this PTO switching tool includes a switching command and a pseudo-clutch operating command. Based on the switching command, the travel control unit 52 of the control unit 5 drives the clutch actuator of the first clutch 26 or the second clutch 27 of the PTO mechanism 16C to achieve the desired transmission of rotational power from the PTO mechanism 16C. At the same time, the pseudo-clutch behavior control unit 511 of the control unit 5 controls the motor M to simulate vehicle body behavior that may occur in an engine-powered work vehicle when power transmission is changed in the PTO mechanism 16C.

[0041] When an engine control program that causes the motor M to behave in a manner that simulates such vehicle characteristics is created as a simulated behavior mode, first, the vehicle body behavior that occurs when an operation is performed to change the power output of the transmission 16 in an engine-powered work vehicle is experimentally determined. An engine control program that causes the motor M to behave in a manner that produces the vehicle body behavior determined here is created as a simulated behavior mode.

[0042] The vehicle body behavior that occurs when power transmission is changed in the PTO mechanism 16C varies depending on the type of working device to which rotational power is transmitted by the PTO mechanism 16C. Different vehicle body behaviors also occur depending on the gear position switched in the gear transmission mechanism 16A. Furthermore, the preferred vehicle body behavior simulated by the motor M and experienced by the driver varies depending on the driver. For this reason, the simulated behavior table 512 stores multiple different simulated behavior modes for simulating the behavior of the electric motor. The simulated clutch behavior control unit 511 selects an appropriate simulated behavior mode based on rules set in advance in accordance with the driver's operation, and controls the simulated behavior of the motor M based on the selected simulated behavior mode. The simulated behavior table 512 is unnecessary when there is only one simulated behavior mode for the sake of simplicity, or when a configuration is adopted in which different simulated behavior modes are created by changing parameters within one simulated behavior mode.

[0043] [Another embodiment] (1) In the above-described embodiment, the HST 15 is provided as a continuously variable transmission in the transmission 16, but the present invention is not limited to this. Other belt-type continuously variable transmissions or planetary gear-type continuously variable transmissions may also be used. Furthermore, the continuously variable transmission may be omitted, and the transmission 16 may be configured solely with a gear-type stepped device.

[0044] (2) In the above-described embodiment, the manual operating device 40 is connected to the control unit 5 by a by-wire system. However, the manual operating device 40 may be connected to the object of operation by a mechanical link. Even in this case, for the manual operating device 40 whose behavior during a change operation needs to be simulated by the motor M, a signal indicating the operation content is sent to the control unit 5.

[0045] The configurations disclosed in the above-described embodiments (including other embodiments, the same applies hereinafter) can be applied in combination with the configurations disclosed in other embodiments, unless a contradiction arises. Furthermore, the embodiments disclosed in this specification are merely examples, and the present invention is not limited to these, and can be modified as appropriate within the scope of the purpose of the present invention. [Industrial Applicability]

[0046] The present invention can be used not only in tractors but also in various electric work vehicles such as combine harvesters, rice transplanters, and construction machines. [Explanation of symbols]

[0047] 4: Battery 14: Inverter 16: Transmission 16A: Gear transmission mechanism 16C :PTO mechanism 19: Grass cutting device 40: Manual operation tool 41: Accelerator operating device 42: Travel control device 43: Work operation tool 5: Control unit 51: Motor control unit 511: Pseudo clutch behavior control unit 512: Pseudo-behavior table

Claims

1. An electric motor; Running gear and a transmission that transmits power from the electric motor to the working device via the traveling device and the PTO shaft; a control unit for controlling the behavior of the electric motor; a manual operating tool that issues a change command to the control unit to change the output power from the transmission to the PTO shaft, The control unit controls the electric motor based on the change command, through a simulated operation of the electric motor, to give the driver a sense of the behavior of the vehicle body during a change operation in an engine-powered work vehicle.

2. 2. The electric work vehicle according to claim 1, wherein the manual operating device is a change operating device for changing the output power of the transmission, the change operating device also functions as a pseudo-command operating device, the change command by the change operating device also includes a pseudo-operation command, and the control unit controls the electric motor based on the change command and the pseudo-operation command.

3. 3. The electric work vehicle according to claim 1, wherein the control unit is provided with a plurality of different simulated behavior modes for simulating the behavior of the electric motor based on the change command.

4. 4. The electric work vehicle according to claim 1, wherein the manual operation device includes a speed change device that switches between a high-speed and low-speed stage shifting section of a gear transmission mechanism equipped in the transmission, the change command by the speed change device is a speed change command, and the control unit controls the electric motor based on the speed change command through a simulated operation of the electric motor so as to give the driver an impression of the behavior of the vehicle body during a speed change operation in an engine-powered work vehicle, and sends a control signal to a speed change actuator of the speed change mechanism.

5. 5. The electric work vehicle according to claim 1, wherein the manual operation device includes a PTO clutch operation device that operates a PTO clutch equipped on the transmission, and the control unit controls the electric motor based on the change command from the PTO clutch operation device, through a simulated operation of the electric motor, so as to give the driver an impression of the behavior of the vehicle body during a change operation in an engine-powered work vehicle, and sends a control signal to an actuator of the PTO clutch.

Citation Information

Patent Citations

  • Driving controller of battery type fork lift

    JP1999165997A

  • Control device of series hybrid vehicle

    JP2008207570A

  • Hybrid drive system for working vehicle

    JP2013056629A

  • Electric working vehicle

    JP2013141955A

  • Land vehicles driven by electric or hydraulic motors

    JP2013520152A