STEERING LEVER SYSTEM FOR WORK VEHICLE
20180292001 ยท 2018-10-11
Assignee
Inventors
Cpc classification
F16H2059/0256
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D11/02
PERFORMING OPERATIONS; TRANSPORTING
A01B69/007
HUMAN NECESSITIES
B62D11/12
PERFORMING OPERATIONS; TRANSPORTING
F16H59/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H59/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D11/12
PERFORMING OPERATIONS; TRANSPORTING
F16H59/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D11/02
PERFORMING OPERATIONS; TRANSPORTING
A01B69/00
HUMAN NECESSITIES
Abstract
A steering lever system includes a pair of lever bodies, a pivotal body coupled to each of the lever bodies and a neutral position detector. The pivotal body includes a first boss portion and a second boss portion. The lever body is pivotable about a first pivot axis of the first boss portion from a neutral position to a neutral end position. The lever body is also pivotable about a second pivot axis of the second boss portion from a forward traveling end position through a neutral position to a reverse traveling end position. The neutral position detector is responsive to a detected portion provided in an auxiliary member fixed to the lever body, at the neutral end position of the lever body. The detected portion is offset from a pivotal locus of the lever body about the first pivot axis.
Claims
1. A steering lever system for controlling forward traveling and reverse traveling of a work vehicle, the system comprising: a pair of lever bodies; a pivotal body coupled to each of the lever bodies, the pivotal body including a second boss portion and a first boss portion, wherein the lever body is pivotable about a first pivot axis of the first boss portion from a neutral position to a neutral end position, and the lever body is also pivotable about a second pivot axis of the second boss portion from a forward traveling end position through a neutral position to a reverse traveling end position, the second pivot axis extending in a direction transverse to the first pivot axis; an auxiliary member fixed to the lever body, the auxiliary member forming a detected portion configured to create a pivotal locus that is laterally offset from a pivotal locus of the lever body about the first pivot axis; and a neutral position detector responsive to the detected portion at the neutral end position of the lever body, wherein the neutral position detector is actuated in the neutral position through contact with the detected portion and the detected portion is disposed on an opposite side of the lever body from the neutral position detector.
2. The steering lever system of claim 1, wherein a lever boss portion formed at a lower portion of the lever body and the first boss are disposed side by side along the first pivot axis, and the lever body is pivotally coupled with the first boss via the first pivot axis.
3. The steering lever system of claim 2, wherein the auxiliary member, during a pivotal movement of the lever body from the neutral position to the neutral end position, passes over the second boss portion with a spacing relative thereto.
4. The steering lever system of claim 1, wherein a housing is provided for covering the pivotal body, the auxiliary member and the neutral position detector, and the housing defines a guide groove through which the lever body extends.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019] Next, one embodiment of the present invention will be explained with reference to the drawings. Here, a steering lever system for a work vehicle is mounted on a riding type grass mowing machine as shown in
[0020] The vehicle body 1 is a framework consisting of angular pipes, etc. Between the pair of left and right front wheels 2a and the pair of left and right rear wheels 2b and via an unillustrated link mechanism, a mower unit 10 is liftably suspended from the vehicle body 1. The link mechanism has a function of parallel lifting up/down the mower unit 10 by a pedal operation or a lever operation.
[0021] At the center of the vehicle body 1, a driver's seat 50 is mounted. On the left and right sides of the driver's seat 50, there are respectively disposed a fender 51 and a steering lever assembly 6 constituting the steering lever system. On the top face of the fender 51, there are disposed various operational levers, operational buttons, etc. Rearwardly of the driver's seat 50, there is mounted an arch-like ROPS (roll-over protection system) 11. The ROPS 11 is formed of an angular pipe. An area rearwardly of the ROPS 11 is an area where a power unit including an engine 20 is to be disposed. The engine 20 is mounted on the vehicle body 1 under such a posture that its output shaft 20a (see
[0022] As schematically shown in
[0023] A speed change ratio of each HST 30 (a range from a forward maximum speed through neutral to a reverse maximum speed) is adjusted based on an operational displacement using the steering lever assembly 6. Namely, the rotational speeds of the left and right rear wheels 2b can be adjusted independently of each other. With this riding grass mowing machine, there are selectively created a neutral state wherein no rotational power is supplied to the left and right rear wheels 2b, a straight traveling state wherein the left and right rear wheels 2b are driven forwardly or reversely at an equal speed, a gentle turning state wherein the left and right rear wheels 2b are driven forwardly or reversely at different speeds from each other, a pivot turning state wherein one of the left and right rear wheels 2b is stopped and the other is driven forwardly or reversely, and a spin turning state wherein one of the left and right rear wheels 2b is driven forwardly and the other is driven reversely.
[0024] As shown in
[0025] Next, with reference to the drawings, the steering lever system according to this embodiment will be explained. This steering lever system, as shown in
[0026] As indicated by arrows in
[0027] As may be apparent from
[0028] As may be apparent from
[0029] In the boss hole 72a of the second boss portion 72, a support shaft 70b is inserted. The boss hole 72a and the support shaft 70b share an axis which is in agreement with the second pivot axis P2. Though not shown in details, the support shaft 70b is attached to the housing 4 via a bracket 45. This support shaft 70b acts as a pivotal shaft when the lever body 60 is pivoted about the second pivot axis P2. The pivotal movement of the lever body 60 about this second pivot axis P2 creates a forward/reverse traveling operational displacement (X-direction displacement) in a range from a forward traveling end position via a neutral position to a reverse traveling end position of the lever body 60.
[0030] The pivotal body 7, more particularly, the second boss portion 72, is pivoted by the forward/reverse traveling displacement of the second lever 62. As shown in
[0031] A neutral positon detector 8 is provided for detecting arrival of the lever body 60 at the neutral end position which is the terminal end of the neutral operational displacement. In the instant embodiment, this neutral position detector 8 is provided as a water-proof plunger limit switch and is attached to the housing 4 via an unillustrated bracket. The auxiliary member 82 configured to push in a plunger 81 as an operational portion of the neutral position detector 8 is attached to an upper position of the lever boss portion 62a of the second lever 62. In the instant embodiment, the auxiliary member 82 is provided as a plate-like member which projects approximately horizontally in the X direction (direction of the forward/reverse traveling operational displacement) from the second lever 62 and supported cantilever-wise to this second lever 62. In the surface of a slightly widened free end region of the auxiliary member 82, there is formed a detected portion 83. As shown in
[0032] With the above-described arrangements of the neutral position detector 8 and the auxiliary member 82, the pivotal locus of the second lever 62 about the first pivot axis P1 and the pivotal locus of the detected portion 83 of the auxiliary member 82 are offset in the lateral direction as can be readily understood from
[0033] As shown in
[0034] The housing 4 which is represented by dot lines in
[0035] The housing 4 includes a guide unit 40 upwardly of the opening 4a. The guide unit 40 includes a forward traveling maximum speed position determining plate 41 and a lever guide plate 42. The forward traveling maximum speed position determining plate 41 and the lever guide plate 42 are bolt-fixed to the ceiling wall of the housing 4. The forward traveling maximum speed position determining plate 41 determines a forward traveling maximum speed position of the lever body 60. The lever guide plate 42 includes a guide groove 43 extending in the X direction for guiding the forward/reverse traveling operational displacement of the lever body 60 and a further guide groove 44 extending in the Y direction for guiding the neutral operational displacement of the lever body 60 from the working neutral position to the neutral end position. If desired, the lever guide plate 42 can be formed integrally with the guide unit 40.
Other Embodiments
[0036] (1) In the foregoing embodiment, the auxiliary member 82 is provided as a plate.sup.-like member. Instead, this can be provided as a bar-like member, an irregular-shaped structure. Further, the detected portion 83 can have any shape that ensures smooth response to the neutral position detector.
[0037] (2) In the foregoing embodiment, the neutral position detector 8 is provided as a plunger type limit switch. Instead, this can be a lever type or roller type limit switch. Further, the neutral position detector 8 can be provided also as a magnetic proximity switch or an electrostatic capacitance switch. In such case, there will be employed a detected portion 83 of a type deemed suitable for the neutral position detector 8 of chosen type.
[0038] (3) In the foregoing embodiment, an HST is used as a variable traveling power supplying mechanism to be operated by the steering lever assembly 6. Instead, any stepless speed changer device such as a belt stepless speed changer device can be employed.
[0039] (4) In the foregoing embodiment, the invention is applied to a mid-mount type grass mowing machine, more particularly, a a zero turning radius mower. Instead, the invention is applicable also to a front mower type mower or any work vehicle other than a mower.