Control device for a crawler vehicle
09811109 · 2017-11-07
Assignee
Inventors
Cpc classification
F16H59/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05G9/02
PHYSICS
F16H61/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/20073
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
International classification
B60K6/00
PERFORMING OPERATIONS; TRANSPORTING
G05G9/02
PHYSICS
F16H61/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A control device for a crawler vehicle, comprising a control lever activated by an operator about a fulcrum and having a free end, the control lever being displaceable along a longitudinal direction of the vehicle between a proximal position closer to the operator and a distal position further from the operator in order to control a main clutch of the vehicle, the control device further comprising a support element suitable for being fixed to a body of the vehicle in order to support an operator's hand when the hand acts on the control lever, wherein the control lever has an intermediate portion interposed between the free end and the fulcrum, the intermediate portion being so shaped as to partially embrace the support element in the proximal position.
Claims
1. A device configured to control a transmission of a crawler vehicle, comprising: a lever element actuatable by an operator in a first direction and rotatable by the operator in a direction transverse to the first direction, the lever element being continuously displaceable between a plurality of positions; a control element operable by the lever element and configured to engage and disengage a main clutch of the crawler vehicle; and a cam member cooperating with a rocker arm assembly to apply on the lever element a controlled force, the controlled force depending on a position of the lever element; wherein the cam member is coupled to the lever element such that displacement of the lever element between the plurality of positions drives the cam member to rotate relative to the rocker arm assembly, and the lever element is rotatable relative to the cam member without altering a position of the cam member, wherein the cam member is delimited by a cam profile which has a recess configured to stably receive a cam follower of the rocker arm assembly in one of the plurality of positions of the lever element corresponding to a configuration in which the main clutch is engaged, wherein the cam profile has a valley configured to stably receive the cam follower in a neutral stable position of the lever element corresponding to a configuration in which the main clutch is disengaged, wherein the cam profile has a profile portion interposed between the valley and the recess, the profile portion being inclined toward the valley so that, if the lever element is released when the cam follower is in contact with the profile portion, the cam member brings the lever element back to the neutral stable position, wherein along the profile portion, the rocker arm assembly applies to the cam member a force which progressively increases from the valley towards the recess, wherein the cam profile has an inclined stretch arranged at an opposite side of the valley with respect to the recess so that, when the cam follower is in contact with the inclined stretch, a transmission brake suitable for braking a gearing mechanism of the vehicle gearbox is activated.
2. The device according to claim 1, wherein two projecting edges are provided at opposite ends of the recess to resist exit of the cam follower from the recess.
3. The device according to claim 1, wherein the inclined stretch has an inclination such that, if the lever element is released when the cam follower is in contact with the inclined stretch, the cam member brings the lever element back to the neutral stable position.
4. The device according to claim 1, wherein the cam follower comprises a rolling bearing which is supported by an oscillating body of the rocker arm assembly.
5. The device according to claim 4, comprising a biasing member acting on the oscillating body and configured to urge the cam follower into contact with the cam member.
6. The device according to claim 5, wherein the oscillating body comprises a first arm having an end region which supports the cam follower and a second arm having an end connected to the biasing member.
7. The device according to claim 1, comprising a bracket having a first longitudinal branch at an end of which the cam member is formed, and a second longitudinal branch connected to the control element, the first longitudinal branch being joined to the second longitudinal branch by a transverse portion which receives a stem of the lever element.
8. The crawler vehicle comprising the device according to claim 1.
9. The device according to claim 1, wherein the recess is delimited by a profile which is shaped as a circle arc.
10. The device according to claim 1, wherein the valley penetrates in the cam member more deeply than the recess.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood and carried out with reference to the attached drawings, which illustrate, by way of non-limiting example, an embodiment of the invention, and in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION OF THE EMBODIMENT(S)
(10)
(11) In an embodiment, the device 1 can furthermore enable the operator to steer the vehicle to the right or to the left.
(12) The device 1 comprises a lever element 2 which can be displaced by an operator's hand for engaging or disengaging the main clutch. During working, the lever element 2 is positioned in front of a seat intended for receiving the operator, so that the operator can actuate the lever element 2 as he looks forward in order to drive the vehicle.
(13) The lever element 2 can comprise a handling portion 26, on which the operator acts, and a stem 27 fastened to the handling portion 26.
(14) The device 1 further comprises control means operable by means of the lever element 2, the control means acting on the main clutch.
(15) The control means can comprise hydraulic means. In the shown example, the control means can comprise a hydraulic distributor suitable for selectively sending a pressurized fluid, for example oil, to a hydraulic cylinder 3. The position of the hydraulic distributor can be controlled by a control rod 4, which is better shown in
(16) The hydraulic distributor is not visible in the Figures because it can for example be housed in an enclosure of the hydraulic cylinder 3. A stem is movable inside the hydraulic cylinder 3 and a transmission element, shaped for example as a fork 5, is connected to the stem. The fork 5 is in turn connected to a lever assembly which is not shown, the lever assembly enabling a plate of the main clutch to be displaced in order to engage or disengage the clutch.
(17) It is also possible to use control means of a type different from that described above, for example of a completely mechanic type.
(18) A cam member 6 is interposed between the lever element 2 and the control means, the cam member 6 cooperating with a rocker arm assembly 7. In particular, in the illustrated example, the cam member 6 is mounted on the lever element 2.
(19) The rocker arm assembly 7 comprises an oscillating body 8 that oscillates around a pin 9. The pin 9 is fastened to a support that is not shown, the support being fixed relative to a frame of the vehicle and being for example shaped as a plate.
(20) A cam follower is mounted on the oscillating body 8, the cam follower being shaped as a wheel 10, suitable for contacting the cam member 6. The wheel 10 can be for example mounted on a first arm 11 of the oscillating body 8, particularly at an end of the first arm 11.
(21) The wheel 10 can comprise a rolling bearing, for example a ball bearing or a needle bearing. By including a rolling bearing in the wheel 10, it is possible to reduce friction between the rocker arm assembly 7 and the cam member 6, thereby ensuring constant and replicable performances in time.
(22) The rolling bearing included in the wheel 10 can contact directly the cam member 6, or it can be provided with an external cover element arranged in contact with the cam member 6.
(23) The device 1 further comprises elastic means acting on the oscillating body 8 for keeping the wheel 10 in contact with the cam member 6. The elastic means may comprise a spring 12, for example a helical spring, interposed between the oscillating body 8 and the vehicle frame. To this end, the spring 12 can have an end 13 fixed to a second arm 14 of the oscillating body 8. A further end 15 of the spring 12, opposite the end 13, can be connected to a peg 16 arranged in a position which is fixed relative to the vehicle frame.
(24) The spring 12 can extend along a vertical or nearly vertical axis, so as to apply to the oscillating body 8 a substantially vertical force.
(25) The second arm 14 can extend along a horizontal or nearly horizontal direction. In the illustrated example, the first arm 11 extends downwards, so as to form an angle greater than 90° with the second arm 14.
(26) The cam member 6 is provided with a cam profile 17 that is better visible in
(27) The cam profile 17 has a recess 18 arranged for receiving the wheel 10 in a configuration in which the main clutch of the vehicle is engaged, as will be better explained below. The recess 18 can be delimited by a circle arc, so as to shapingly engage with a portion of the perimeter of the wheel 10. Two protruding edges 19 can be provided at the sides the recess 18, the protruding edges 19 projecting from the cam profile 17.
(28) Owing to the shape of the recess 18 and to the protruding edges 19, the wheel 10 can be stably received in the recess 18.
(29) The cam profile 17 further has a valley 20 arranged for receiving the wheel 10 in a neutral stable configuration, as will be better explained below. In the illustrated example, the valley 20 is arranged below the recess 18, during operation. The valley 20 penetrates inside the cam member 16 more deeply than the recess 18.
(30) The bottom of the valley 20 is joined to the protruding edge 19 closer to the valley 20 by means of an inclined profile portion 21. The inclined profile portion 21 can be curved, for example convex towards the outside of the cam profile 17.
(31) The cam profile 17 further comprises an inclined stretch 22 which extends from the bottom of the valley 20 towards the periphery of the cam profile 17. The inclined stretch 22 can have a substantially rectilinear extension.
(32) In the illustrated example, the cam member 6 is obtained in a “U”-shaped bracket, said bracket having a first longitudinal branch 23 and a second longitudinal branch 24 joined to one another by a transverse portion 25.
(33) A hole is obtained in the transverse portion 25, the stem 27 fastened to the handling portion 26 of the lever element 2 passing through said hole. Between the hole of the transverse portion 25 and the stem 27 a preset clearance is provided, so as to allow a relative rotation between the stem 27 and the cam member 6.
(34) A shaft 28, shown in
(35) The shaft 28 extends inside a tubular element 29 which is fixed relative to the vehicle frame.
(36) The first longitudinal branch 23 and the second longitudinal branch 24 are arranged at two opposite sides of the tubular element 29, which is thus interposed between the above mentioned longitudinal branches.
(37) The cam member 6 is connected to the tubular element 29 by means of a connection which enables the cam member 6 to oscillate relative to the tubular element 29. To this end, in the illustrated example, two pin members 30, shown in
(38) The cam profile 17 is obtained along a free end of the first longitudinal branch 23 opposite the transverse portion 25.
(39) The control rod 4 is on the other hand connected to the second longitudinal branch 24, for example at a free end of the second longitudinal branch 24 opposite the transverse portion 25.
(40) During working, the operator can move the lever element 2 between a plurality of positions, some of which are shown in
(41) In particular,
(42) The configuration shown in
(43)
(44) If the operator releases the lever element 2 when the wheel 10 is in the recess 18, the wheel remains in a balance condition in the recess 18. The position P2 shown in
(45)
(46) If, starting from the advancement stable position P2 shown in
(47) As the wheel 10 moves relative to the cam profile 17 towards the centre of the valley 20, the cam member 6, by means of the control rod 4, of the hydraulic cylinder 3 and of the lever assembly connected thereto, moves a shaft on which a plate of the main clutch is mounted and disengages the main clutch. The neutral stable position P1 is therefore reached.
(48) Thereafter, the operator further pulls the lever element 2 towards himself, so that the wheel 10 comes into contact with the inclined stretch 22 of the cam profile 17, as shown in
(49) After halting the gearing mechanism by means of the transmission brake, the operator can release the lever element 2, which is automatically brought back into the neutral stable position P1 shown in
(50) At this point, i.e. when the lever element 2 has been brought back to the neutral stable position P1, the operator can change gear by using a lever which is not shown.
(51) Thereafter, the operator pushes the lever element 2 to the advancement stable position P2 so that the control means re-engage the main clutch.
(52) If the lever element 2 is released in an intermediate position between the neutral stable position P1 shown in
(53) This occurs because, along the inclined profile portion 21, the rocker arm assembly 7 applies to the cam member 6, through the wheel 10, a force which tends to displace the cam member 6 in such a manner that the wheel 10 is positioned in the centre of the valley 20.
(54) The force that the rocker arm assembly 7 applies to the cam member 6 depends both on the force exerted by the spring 12 and on the force due to contact between the cam profile 17 and the wheel 10. This latter force is influenced by the friction between the wheel 10 and the cam profile 17, as well as by the shape of the cam profile 17.
(55) Owing to the inclined profile portion 21, it is possible to ensure that the rocker arm assembly 7 applies to the cam member 6 a force which gradually increases as the lever element 2 is moved from the neutral stable position P1 towards the advancement stable position P2.
(56) Thus, the operator who moves the lever element 2 can have a precise idea, step by step, about the position of the lever element 2 and the extent of which the lever element 2 has still to be rotated before reaching the advancement stable position P2. In fact, the force that the operator has to apply to the lever element 2 for moving the latter from the neutral stable position P1 to the advancement stable position P2 is relatively low at the beginning, when the wheel 10 is still close to the centre of the valley 20. The greater said force, the closer is the wheel 10 to the recess 18. The operator is therefore capable of knowing, at any moment, how much the lever element 2 can still be displaced before the main clutch is stably engaged.
(57) This is particularly useful when the operator wishes to modulate the position of the main clutch, thereby causing a controlled “skating” of the latter. By so doing, it is possible to displace forwards the vehicle slowly and precisely, for example in order to move the vehicle close to an implement for attaching the implement to a support of the vehicle.
(58) The cam profile 17 can be freely selected in such a way that the force which needs to be applied to the lever element 2 varies according to a desired curve. Thus, it is possible to choose the most suitable curve for the type of application the vehicle is intended for.
(59) The protruding edge 19 which delimits the recess 18 at the side closer to the valley 20 acts as a peak beyond which it is necessary to pass before stably engaging the main clutch. This peak gives the operator a precise indication that the main clutch has been stably engaged, because the operator first feels a rather quick increase in the force that needs to be applied to the lever element 2 (when the wheel 10 is positioned along the inclined profile portion 21 immediately before the protruding edge 19, as shown in
(60) The protruding edge 19 which delimits the recess 18 at the side further from the valley 20 acts on the other hand as a limit stop which blocks the lever element 2 in case the operator erroneously tries to displace the lever element 2 in such a way the wheel 10 is located beyond the recess 18.
(61) The cam member 6 and the rocker arm assembly 7 define a particularly simple system, made of a small number of components, which allows the position of the lever element 2 to be precisely controlled, and enables the force which is required for moving the lever element 2 to be fine-tuned during the stroke of the lever element 2.
(62) Furthermore, the lever element 2 can be optionally rotated rightwards or leftwards without influencing the position of the cam member 6. This rotation of the lever element 2 is useful when, by acting on a single lever element 2, it is possible both to engage or disengage the main clutch and to steer to the left or to the right, as happens in some known crawler vehicles.
(63) To this end, it is recalled that the crawler vehicles are provided with a right track and a left track each of which is driven by a corresponding drive sprocket. A brake and a steering clutch are associated to each drive sprocket for enabling the operator to steer to the corresponding direction.
(64) By tilting the lever element 2 leftwards, it is possible to disengage the steering clutch associated to the left track of the vehicle, in order to steer to the left along a relatively wide steering arc, and possibly also to act on the brake associated to the left track, in order to steer along a narrower steering arc.
(65) This case is shown by a continuous line in
(66) It is stressed that by rotating the lever element 2 about the longitudinal axis X neither the cam member 6, nor the rocker arm assembly 7 are influenced. Indeed, the stem 27 rotates with a clearance inside the hole obtained in the transverse portion 25 associated to the cam member 6 and the position of the cam member 6 remains unchanged.
(67) Also the shaft 28 rotates inside the tubular element 29 without moving the tubular element 29.
(68) A similar situation occurs when the lever element 2 is rotated rightwards, as indicated by a broken line in
(69) Thus, the lever element 2 can be rotated rightwards or leftwards about the longitudinal axis X in positions P1, P2, P3 or in any intermediate position between P1 and P2 or P1 and P3. This makes possible to act on the steering clutches and possibly on the corresponding brakes in order to steer the vehicle even when changing gear.