The present invention relates to electric work vehicles.
For example, as shown in Japanese Patent Application Publication No. 2019-80514, there is a work vehicle (riding-type mower) in which an engine and an engine hood for housing the engine are provided at the front portion of a traveling body, the work vehicle being configured to travel due to the output of the engine.
In order to obtain an electric work vehicle including a travel motor instead of an engine, it is necessary to include a battery that supplies power to the motor, and the weight of the battery is applied to the traveling body.
Example embodiments of the present invention provide electric work vehicles in each of which a battery is included at a front portion of a traveling body such that a front weight and a rear weight of a traveling body being easily balanced.
An electric work vehicle according to an example embodiment of the present invention includes a travel motor provided in a traveling body of the electric work vehicle, a battery provided at a front portion of the traveling body to supply electric power to the motor, a cable to extract electric power from the battery, and a cover to cover the battery and the cable, in which the cable extends from a front portion of the battery.
According to this configuration, the battery is located on the body rear side relative to the cable at the portion covered by the cover located at the front portion of the traveling body, and therefore compared to the case where the cable extends from the rear portion of the battery, the load of the battery is applied to, in the front portion of the traveling body, the portion located on the body rear side relative to the portion corresponding to the cable, and it is possible to obtain an electric work vehicle in such a manner that it is easy to balance the front and rear weight of the traveling body.
In an example embodiment of the present invention, it is preferable that the motor is provided below a rear portion of the battery.
According to this configuration, the load of the motor is applied to the traveling body at the same position as the rear portion of the battery in the body front-rear direction and at a lower position than the battery, and therefore it is easy to balance the front and rear weight of the traveling body and lower the center of gravity of the traveling body.
In an example embodiment of the present invention, it is preferable to include an inverter connected to the cable and the motor, in which the inverter is provided below the battery on a body frontward side relative to the motor.
According to this configuration, since the inverter is located at a position near the front portion of the battery relative to the motor and at a position lower than the battery, it is easy to connect the cable extending from the battery to the inverter.
In an example embodiment of the present invention, it is preferable to include a cover covering the motor and the inverter from below.
According to this configuration, the inverter and the motor can be protected by the cover such that the inverter and the motor are not hit by dirt, stones, and the like that are thrown up from below the traveling body.
In an example embodiment of the present invention, it is preferable that the cover includes a top plate covering the battery from above, and a front portion of the top plate has a shape inclined downward toward the front.
According to this configuration, the height position of the front portion of the top plate is lower than the height position of the rear portion thereof, but since a space corresponding to the cable is located between the front portion of the top plate and the front portion of the battery, interference between the battery and the front portion of the top plate can be avoided.
In an example embodiment of the present invention, it is preferable to include a front motive power extraction shaft provided at a front portion of the traveling body to extract motive power from the motor.
According to this configuration, the motive power from the motor can be extracted by the front motive power extraction shaft, and therefore, when a work device such as a front mower or snow removal device is connected to the front portion of the traveling body, the motive power from the motor is easily taken into the connected work device.
The above and other elements, features, steps, characteristics and advantages of the present invention will become more apparent from the following detailed description of the example embodiments with reference to the attached drawings.
Example embodiments of the present invention will be described based on the drawings. In the following description, the direction of arrow F in the drawings is “front”, the direction of arrow B is “rear”, the direction of arrow L is “left”, and the direction of arrow R is “right”, unless otherwise stated. Also, the direction of arrow U in the drawings is “up”, and the direction of arrow D is “down”.
The following describes a tractor according to the present example embodiment. As shown in
The tractor also includes a body frame 2 and a driving section 3. The body frame 2 is supported by the left and right front wheels 10 and the left and right rear wheels 11.
The cover 12 is disposed at a front portion of the body of the tractor. The driving section 3 is behind the cover 12. In other words, the cover 12 is in front of the driving section 3.
The driving section 3 includes a protective frame 30, a driver's seat 31, and a steering wheel 32. An operator can sit on the driver's seat 31. Accordingly, the operator can get in the driving section 3. The operator steers the left and right front wheels 10 by operating the steering wheel 32. The operator can perform various driving operations in the driving section 3.
The tractor includes a travel battery 4. The cover 12 is pivotable about an opening/closing axis Q extending in the left-right direction of the body. Accordingly, the cover 12 is openable and closable. When the cover 12 is closed, the travel battery 4 is covered by the cover 12.
As shown in
As shown in
The hydraulic pump 15a is driven by rotational motive power transmitted from the motor M. As a result of the hydraulic pump 15a being driven, rotational motive power is output from the hydraulic motor 15b. The hydraulic continuously variable transmission 15 is configured to change the transmission of rotational motive power between the hydraulic pump 15a and the hydraulic motor 15b. Also, the hydraulic continuously variable transmission 15 is capable of changing the transmission ratio in a stepless manner.
The rotational motive power output from the hydraulic motor 15b is transmitted to the transmission 16. The rotational motive power transmitted to the transmission 16 is subjected to speed change by a gear transmission mechanism included in the transmission 16, and the rotational motive power is distributed to the left and right front wheels 10 and the left and right rear wheels 11. Thus, the left and right front wheels 10 and the left and right rear wheels 11 are driven.
As shown in
If a work device is connected to the middle PTO shaft 17 or the rear PTO shaft 18, the work device is driven by rotational motive power transmitted by the middle PTO shaft 17 or the rear PTO shaft 18. For example, in the present example embodiment, a grass cutting device 19 is connected to the middle PTO shaft 17 as shown in
An electric grass cutter (an example of an “electric work vehicle”) includes a tractor and a grass cutting device 19, as shown in
The direction of arrow F shown in
As shown in
As shown in
The travel battery 4 is placed on and fixed to a base frame 24 supported by the body frame 2. The base frame 24 is supported on the body frame 2 due to legs 24a provided at a plurality of locations on the base frame 24 being supported by support portions 25 provided on the pair of left and right main frames 2a.
The motor M is below the rear portion of the travel battery 4. The motor M is supported by the supports 34 connected to the pair of left and right main frames 2a.
The inverter 14 is below the travel battery 4 on the body frontward side relative to the motor M. The inverter 14 is placed on and fixed to the support portions 25 provided on the pair of left and right main frames 2a. The inverter 14 is located between the left and right legs 24a.
As shown in
The DC power stored in the travel battery 4 is extracted by the first cable 26, supplied to the inverter 14, and converted into AC power, and the AC power resulting from conversion is supplied from the inverter 14 to the motor M by the second cable 27.
Reference numeral 28 shown in
As shown in
Specifically, the cover 12 includes a top plate 12a that covers the travel battery 4, the first cable 26, and the radiator 22 from above, left and right side plates 12b that cover the motor M, the travel battery 4, the inverter 14, the first cable 26, and the radiator 22 from both sides, and a front plate 12c that covers the travel battery 4, the first cable 26, the inverter 14, and the radiator 22 from the front. As shown in
In this example embodiment, the left and right side plates 12b each include an upper side plate 12u extending downward from the lateral end of the top plate 12a, and a lower side plate 12d formed separately from the upper side plate 12u, but the upper side plate 12u and the lower side plate 12d may also be formed in one piece. In this example embodiment, the front plate 12c is formed integrally with the top plate 12a, but the front plate 12c and the top plate 12a may also be formed separately from each other.
As shown in
(1)
Specifically, the first front motive power extraction shaft 41 is rotatably supported by a first support portion 42 provided at the front portion of the body frame 2. A rear portion of the first front motive power extraction shaft 41 and an output portion M2 provided in the travel motor M are connected to each other via a rotation shaft 43. The rotation shaft 43 is rotatably supported by a second support portion 44 provided in the body frame 2 between the first support portion 42 and the output portion M2. The motive power output by the travel motor M from the output portion M2 is transmitted to the first front motive power extraction shaft 41 via the rotation shaft 43.
(2)
Specifically, the second front motive power extraction shaft 45 is rotatably supported by a first support portion 42 provided at the front portion of the body frame 2. A rear portion of the second front motive power extraction shaft 45 and a motive power extraction portion 46a provided in an input case 46 of a grass cutting device 19 are connected to each other via a rotation shaft 47. The rotation shaft 47 is rotatably supported by a second support portion 44 provided in the body frame 2 between the first support portion 42 and the motive power extraction portion 46a. A universal joint 48 serving as a bending portion that allows the grass cutting device 19 to move up and down is provided at a portion of the rotation shaft 47 between the second support portion 44 and the motive power extraction portion 46a. The motive power output by the travel motor M is transmitted to the second front motive power extraction shaft 45 via the middle PTO shaft 17, the input case 46, and the rotation shaft 47.
(3) In the above-described example embodiments, an example is shown in which the grass cutting device 19 is provided, but the electric work vehicle may also include any work device such as a chemical spraying device, instead of the grass cutting device 19.
(4) In the above-described example embodiments, an example was shown in which the motor M was provided below the rear portion of the travel battery 4, but the motor M may also be provided at any location, such as behind the travel battery 4.
(5) The above-described example embodiments showed an example in which the inverter 14 is provided below the travel battery 4 on the body frontward side relative to the motor M, but there is no limitation to this, and the inverter 14 may also be provided at any location, such as behind the motor M.
(6) In the example embodiments described above, an example was shown in which the cover 35 was provided, but the cover 35 need not be provided.
(7) In the above-described example embodiments, an example was shown in which the front portion 12f of the top plate 12a has a shape that slopes downward toward the front, but there is no limitation to this, and the front portion 12f may have any shape.
(8) A heat shield plate that prevents heat transfer to the first cable 26 may also be provided between the rotary fan 23 and the oil cooler 33 or between the oil cooler 33 and the first cable 26.
Example embodiments of the present invention are applicable to electric work vehicles including travel motors.
While example embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
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2021-211639 | Dec 2021 | JP | national |
This application claims the benefit of priority to Japanese Patent Application No. 2021-211639 filed on Dec. 24, 2021 and is a Continuation Application of PCT Application No. PCT/JP2022/040432 filed on Oct. 28, 2022. The entire contents of each application are hereby incorporated herein by reference.
Number | Date | Country | |
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Parent | PCT/JP2022/040432 | Oct 2022 | WO |
Child | 18742037 | US |