The present disclosure relates to a work vehicle such as a utility terrain vehicle (UTV) including a body with a carrier box.
UTVs are used as four-wheel drive off-road vehicles for multiple purposes such as farmwork and transportation. A UTV may include a carrier box switchable between a horizontal position and a slanted position with a front portion lifted in response to an operation of a dump cylinder.
US2021/0086843A1, for example, discloses a work vehicle in the form of a UTV including a carrier box with a rear gate disposed at the back end thereof and capable of being opened and closed. The work vehicle disclosed in US2021/0086843A1 includes a single handle outward of a central portion of the rear gate. The rear gate is structured such that a user facing the rear gate can pull the handle toward the user to unlock the rear gate. With the rear gate unlocked as such, the user can cause the rear gate to fall into a horizontal position, in which the carrier box can receive various objects as loaded thereon.
A carrier box may be provided with a winch and configured such that a front portion thereof is liftable for a slanted position in response to an operation of a dump cylinder to allow a heavy object to be pulled with use of the winch to be loaded onto the carrier box. Such loading work may be performed at nighttime, which makes it difficult to operate the winch appropriately or perceive the state of an object to be loaded. While conventional work vehicles may include a backward light, such a light is configured not to illuminate the carrier box, but to emit light backward of the work vehicle. This does not facilitate loading work at nighttime. The above circumstances have led to a demand for a work vehicle that facilitates loading work at nighttime.
In view of the above, a work vehicle according to the present disclosure includes: a front panel; a floor panel; a pair of left and right side panels; a rear gate supported by the floor panel in such a manner as to be capable of being opened and closed; and a lighting section including: a light configured to emit light backward; and a support panel attached to the front panel and supporting the light.
The present disclosure is further described in the detail description which follows, in reference to the noted plurality of drawings by way of non-limiting examples of exemplary embodiments of the present disclosure, in which like reference numerals represent similar parts throughout the several views of the drawings, and wherein:
The description below deals with a work vehicle as an embodiment of the present disclosure with reference to drawings. The present embodiment described below is, as an example work vehicle, a utility terrain vehicle (UTV) including a body with a carrier box. The present disclosure is, however, not limited to the embodiment below, and may be altered variously within its scope.
The description below uses terms such as “front” and “forward” to refer to the front side in the front-back direction of the body (indicated as “F” in the drawings), terms such as “back” and “backward” to refer to the back side in the front-back direction of the body (indicated as “B” in the drawings), terms such as “left-right direction” and “lateral” to refer to the horizontal direction perpendicular to the front-back direction of the body, terms such as “below” and “downward” to refer to the gravitational direction (indicated with “D” in the drawings), and terms such as “above” and “upward” to refer to the direction opposite to the gravitational direction (indicated with “U” in the drawings).
The body 1 is provided with a pair of left and right front wheels 2A at a front portion and a pair of left and right rear wheels 2B at a back portion. The body 1 includes a driver section 1A backward of the front wheels 2A and a carrier box 1B backward of the driver section 1A. The carrier box 1B is configured such that a front portion thereof is liftable for a slanted position in response to an operation of a dump cylinder (that is, the below-described fluid cylinder 31) to allow a load to be dumped backward by its self weight.
The driver section 1A includes a driver's seat 11 for a driver to sit on and a steering wheel 12 positioned forward of the driver's seat 11 and operable to turn the front wheels 2A. The driver section 1A further includes two ROPS frames 13 respectively at the left and right sides of the driver section 1A to protect the driver and any other occupant in the event of a roll-over accident of the body 1.
The carrier box 1B is an open-top box including (i) a floor panel 14 as a bottom wall, (ii) a pair of left and right side panels 15 connected with respective lateral sides of the floor panel 14, (iii) a front panel 16 connected with the front end of the floor panel 14, and (iv) a rear gate 17 connected with the back end of the floor panel 14. The floor panel 14 is a rectangular plate. The side panels 15 are connected respectively with the entire lateral sides of the floor panel 14. The front panel 16 is connected with the entire front side of the floor panel 14. The rear gate 17 is connected with the entire back side of the floor panel 14. The carrier box 1B for the present embodiment has a large capacity. Approximately two-thirds or smaller of its area lies forward of the rear axle 21 for the rear wheels 2B, while approximately one-third or larger of the area lies backward of the rear axle 21.
For normal use, the floor panel 14, the side panels 15, and the front panel 16 are so fixed as to be unmovable relative to one another, and the rear gate 17 is movable rotationally about the back end of the floor panel 14 as a rotary shaft. The rear gate 17 is capable of being restricted in its backward movement with use of wires hung between the respective side panels 15 and the rear gate 17. The side panels 15 are each provided with a lock member 15c unlockable to allow the corresponding side panel 15 to move rotationally outward relative to the front panel 16.
The carrier box 1B is provided with a winch 18 fixed to the floor panel 14 or the front panel 16 at a central position of the connection between the floor panel 14 and the front panel 16. The winch 18 is forward relative to the floor panel 14 to allow a largest possible load capacity for the carrier box 1B. The winch 18 may alternatively be absent.
The side panels 15 are provided with an engagement section 19 to which a plate-shaped member 20 such as a wooden frame is detachably attachable. The engagement section 19 is in the form of a plurality of (six for the present embodiment) insertion hole forming members 19A which are provided for each of the side panels 15 and in each of which a protrusion 20a of a plate-shaped member 20 is insertable. The side panels 15 are each provided with insertion hole forming members 19A at least one of which is backward of the rear axle 21. The insertion hole forming members 19A are provided for the side panels 15 in left-right symmetry.
The side panels 15 are each fixed to the front panel 16 with use of a lock member 15c. The front panel 16 is fixed to the floor panel 14 with use of fastener members such as bolts. The front panel 16 is provided with a lighting section 5 including a light 51 configured to emit light backward and a support panel 52 detachably attached to the front panel 16 and supporting the light 51. The light 51 is at such a position on the lighting section 5 as to illuminate the winch 18. The light 51 is in the form of a pair of LED units 51a each including a plurality of linearly arranged LEDs (light emitting diodes). The LED units 51a are disposed at respective upper corners of the support panel 52, and each have an inclined arrangement. The light 51 does not necessarily include LEDs, and may be any illuminator. Further, the support panel 52 may alternatively be integral with the front panel 16 or welded or otherwise fixed to the front panel 16.
As illustrated in
The support panel 52 includes (i) a body plate 52A to which the LED units 51a are fixed and (ii) a pair of projections 52B projecting from respective lower left and right ends of the body plate 52A and integral with the body plate 52A. The LED units 51a are each fixed to an upper corner of the body plate 52A and shaped in a straight line so inclined that a portion closer to the corresponding lateral end of the body plate 52A is lower in position. The LED units 51a are, in other words, arranged in left-right symmetry as if to cut off the respective upper corners of the body plate 52A. Inserting the projections 52B into the respective through holes 16a in the upper portions of the front panel 16 and fixing the projections 52B with use of fastener members such as bolts results in the support panel 52 providing an additional height for the front panel 16. Further, the LED units 51a, each of which is fixed to an upper corner of the body plate 52A and shaped in an inclined straight line, are capable of illuminating the entire carrier box 1B, with particular brightness for the winch 18 and the area therearound.
The lighting section 5 includes an inclined plate 53 coupled to an upper portion of the support panel 52 with use of fastener members such as bolts and extending forward of the support panel 52. The inclined plate 53 extends across the gap between the driver section 1A and the carrier box 1B (specifically, the front panel 16) and obliquely upward from the carrier box 1B toward the driver section 1A. The inclined plate 53, which extends forward of the support panel 52 as described above, prevents an object in the carrier box 1B from falling into the gap in front of the front panel 16.
As illustrated in
As illustrated in
As illustrated in
The hold position illustrated in
The up position illustrated in
The flat position illustrated in
The ramp position illustrated in
The first lock mechanisms 41 each include an operation pin 41d and a support plate 41e in which the operation pin 41d is inserted. Moving the operation pin 41d toward and away from the second panel 17B switches the first lock mechanism 41 between a locking state and an unlocking state.
The second lock mechanisms 42 each include an operation bar 42a as a handle, a support member 42b supporting the operation bar 42a in such a manner that the operation bar 42a is movable rotationally, and a loop-shaped latch 42c engageable with the support member 42b. The operation bar 42a is movable rotationally about the rotary shaft 42b1 of the support member 42b along the outer face of the first panel 17A. Moving the operation bar 42a, positioned at a lateral end portion of the first panel 17A and oriented in the up-down direction, rotationally in the left-right direction and then pulling the operation bar 42a backward moves the support member 42b and the latch 42c outward, rendering the second lock mechanism 42 in the unlocking state. In this state, pushing the operation bar 42a forward moves the support member 42b and the latch 42c inward to achieve a locked state. In the locked state, the operation bar 42a is movable rotationally in the left-right direction about the rotary shaft 42b1 of the support member 42b and also in the up-down direction.
The embodiment described above is configured such that the lighting section 5 includes a support panel 52 attached to the front panel 16 and supporting the light 51. This allows the light 51 to illuminate the loading space of the carrier box 1B. Further, when the carrier box 1B is moved in response to an operation of the fluid cylinder 31 into a slanted position with a front portion lifted, the support panel 52 is moved together with the front panel 16. This allows the light 51 to keep illuminating the loading space. The embodiment described above is, in other words, configured such that the carrier box 1B is capable of being lifted and lowered into a slanted position with use of a fluid cylinder 31 and that the lighting section 5 illuminates a predetermined area of the carrier box 1B regardless of the position into which the carrier box 1B has been lifted or lowered. This allows the lighting section 5 to keep illuminating the loading space when the carrier box 1B is moved with use of the fluid cylinder 31 from a horizontal position into a slanted position with a front portion lifted. This in turn facilitates loading work at nighttime. Further, the support panel 52 is detachable from the front panel 16, and may be removed during the daytime so that the UTV 100 has a lighter weight and a better fuel efficiency.
The light 51 is at such a position on the lighting section 5 as to illuminate the winch 18. This allows an operator to easily operate the winch 18, which would otherwise be difficult to operate at nighttime. The light 51 is, in particular, in the form of a pair of inclined LED units 51a at respective upper corners of the support panel 52. This allows an area requiring illumination to be illuminated in a concentrated manner.
(1) The embodiment described above is configured such that the side panels 15 are connected respectively with the entire lateral sides of the floor panel 14. The side panels 15 may alternatively be connected respectively with portions of the lateral sides of the floor panel 14. The embodiment described above is configured such that the front panel 16 is connected with the entire front side of the floor panel 14. The front panel 16 may alternatively be connected with a portion of the front side of the floor panel 14. The embodiment described above is configured such that the rear gate 17 is connected with the entire back side of the floor panel 14. The rear gate 17 may alternatively be connected with a portion of the back side of the floor panel 14. In other words, the carrier box 1B, which has a first dimension from its front end to its back end, may alternatively include a left side panel 15, a right side panel 15, and a floor panel 14 each extending in the front-back direction over at least a portion of the first dimension, a front panel 16 positioned at the front end of the carrier box 1B and extending over at least a portion of a second dimension between the left side panel 15 and the right side panel 15, and a rear gate 17 positioned at the back end of the carrier box 1B, extending over at least a portion of the second dimension, and movable to close the space defined by the left side panel 15, the right side panel 15, and the floor panel 14.
(2) The embodiment described above is configured such that the side panels 15 are provided with an engagement section 19 to which a plate-shaped member 20 such as a wooden frame is detachably attachable. The plate-shaped member 20 may, however, be replaced with any other height extension that the user prepares as desired to provide an additional height for each side panel 15. The engagement section 19 may be in the form of a hole(s) in an upper portion of a sufficiently thick side panel 15.
(3) The embodiment described above is configured such that the light 51 is in the form of a pair of inclined LED units 51a at respective upper corners of the support panel 52. The light 51 may, however, be in any form as long as the light 51 is at such a position on the lighting section 5 as to illuminate the winch 18. Further, the support panel 52 may alternatively be detachably attached to the ROPS frames 13.
(4) The work vehicle described above is not limited to a utility terrain vehicle (UTV), and may alternatively be, for example, a vehicle with a carrier box such as a pickup truck as long as the vehicle is capable of, for example, farmwork and transportation.
The description below outlines the work vehicle described above as an embodiment.
(1) A work vehicle, including: a carrier box including: a front panel; a floor panel; a pair of left and right side panels; a rear gate supported by the floor panel in such a manner as to be capable of being opened and closed; and a lighting section including: a light configured to emit light backward; and a support panel attached to the front panel and supporting the light.
With the above configuration, the lighting section includes a support panel attached to the front panel and supporting the light. This allows the light to illuminate the loading space of the carrier box. Further, when the carrier box is moved in response to an operation of the dump cylinder into a slanted position with a front portion lifted, the support panel is moved together with the front panel. This allows the light to keep illuminating the loading space. This in turn facilitates loading work at nighttime.
(2) The work vehicle may be configured such that the support panel is detachable from the front panel.
With the above configuration, the support panel is detachable from the front panel. The support panel may thus be removed during the daytime so that the work vehicle has a lighter weight and a better fuel efficiency.
(3) The work vehicle may be configured such that the carrier box further includes a winch at a position on a boundary between the floor panel and the front panel, and the light is at such a position on the lighting section as to illuminate the winch.
With the above configuration, the light is at such a position on the lighting section as to illuminate the winch. This allows an operator to easily operate the winch, which would otherwise be difficult to operate at nighttime.
(4) The work vehicle may be configured such that the light includes a pair of inclined LED units at respective upper corners of the support panel.
With the above configuration, the light is in the form of a pair of inclined LED units at respective upper corners of the support panel. This allows an area requiring illumination to be illuminated in a concentrated manner.
(5) The work vehicle may be configured such that the support panel includes a projection insertable in a through hole in an upper portion of the front panel so that the support panel provides an additional height for the front panel.
With the above configuration, the support panel includes a projection insertable in a through hole in an upper portion of the front panel. This allows the support panel to be attached easily.
(6) The work vehicle may further include: an inclined plate coupled to an upper portion of the support panel and extending forward of the support panel.
With the above configuration, the work vehicle includes an inclined plate extending forward of the support panel. This prevents an object in the carrier box from falling into the gap in front of the front panel.
(7) The work vehicle may be configured such that the carrier box is capable of being lifted and lowered into a slanted position with use of a fluid cylinder, and the lighting section illuminates a predetermined area of the carrier box regardless of a position into which the carrier box has been lifted or lowered.
The above configuration allows the lighting section to keep illuminating the loading space when the carrier box is moved with use of the fluid cylinder from a horizontal position into a slanted position with a front portion lifted.
The arrangements disclosed for the above embodiments (including the alternative embodiments; hereinafter the same applies) may each be combined with an arrangement disclosed for another embodiment, as long as such a combination does not cause a contradiction. Further, the embodiments disclosed in the present specification are mere examples. The present disclosure is not limited to those embodiments, and may be altered as appropriate, as long as such an alteration does not result in a failure to attain an object of the present disclosure.