Wheel axle for a combine harvester
11110771 · 2021-09-07
Assignee
Inventors
Cpc classification
B60G21/073
PERFORMING OPERATIONS; TRANSPORTING
B60G7/006
PERFORMING OPERATIONS; TRANSPORTING
B60G2200/144
PERFORMING OPERATIONS; TRANSPORTING
B60B35/02
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/82
PERFORMING OPERATIONS; TRANSPORTING
B60G3/26
PERFORMING OPERATIONS; TRANSPORTING
B60G2300/09
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60G7/00
PERFORMING OPERATIONS; TRANSPORTING
B60G21/073
PERFORMING OPERATIONS; TRANSPORTING
B60G21/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
There is described a wheel axle for an agricultural vehicle such as a combine harvester. The wheel axle has at least one wheel suspension (32a) arranged to maintain a wheel axle parallel to the supporting surface, through use of a linkage arrangement (36, 38, 40) which is pivotally coupled to the axle frame (30). The configuration of the wheel suspension allows for the wheel axis to passively follow the surface profile, as any loads transmitted through the wheel carrier act to level out the wheel suspension to align with the underlying surface. As the wheel axle is adjusted to lie parallel with the underlying surface, accordingly the ground-contacting surface area of the associated wheels is maximised.
Claims
1. A wheel axle for a combine harvester having a frame and at least one wheel suspension, the wheel suspension comprising: a first body connected to the frame; a distribution bar having a first end and an opposed second end, said distribution bar being pivotally mounted to the first body at a midpoint of the distribution bar between the first and second ends of the distribution bar; a lift link pivotally connected to the frame, wherein the first end of the distribution bar is pivotally connected to a first end of the lift link; a push link, wherein the second end of the distribution bar is pivotally connected to a first end of the push link; and a wheel carrier defining a wheel axis for a ground-contacting element to be mounted to the wheel carrier, wherein opposed second ends of the respective lift link and push link are pivotally coupled with the wheel carrier, such that the wheel carrier and wheel axis are adjustable relative to the frame, wherein the first body comprises an actuator having a first end mounted to the frame, and wherein the distribution bar is pivotally mounted to the second end of the actuator.
2. The wheel axle of claim 1, wherein a 4-bar linkage is formed between the distribution bar, the lift link, the push link, and the wheel carrier.
3. The wheel axle of claim 1, wherein the first end of the actuator is pivotally mounted to the frame.
4. The wheel axle of claim 1, wherein the actuator is a hydraulic cylinder.
5. The wheel axle of claim 4, wherein the wheel axle comprises left and right wheel suspensions, wherein hydraulic chambers of respective hydraulic cylinders of the left and right wheel suspensions are fluidly connected.
6. The wheel axle of any one of claim 1, wherein the wheel axle further comprises at least one stop element coupled between the frame and the wheel carrier, wherein the stop element prevents over-extension of the wheel carrier relative to the frame.
7. The wheel axle of claim 6, wherein the at least one stop element is selected from the following: a cylinder stop, a chain, a bearing projection.
8. The wheel axle of any one of claim 1, wherein the lift link comprises a triangle-shaped beam, wherein the first end is at a first vertex of the triangle, the second end is at a second vertex of the triangle, and a pivot point of the lift link is arranged at a third vertex of the triangle.
9. The wheel axle of any of claim 1, wherein the ground contacting element comprises a wheel.
10. The wheel axle of claim 9, wherein the ground contacting element comprises a dual wheel.
11. A combine harvester having at least one wheel axle as claimed in any one of claim 1.
Description
DETAILED DESCRIPTION OF THE INVENTION
(1) Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8) With reference to
(9) The features of the wheel suspensions 32a,32b will be described with reference to the enlarged view of the right wheel suspension 32a provided in
(10) The wheel suspension 32a comprises a first body in the form of a linear actuator 34 pivotally attached to the axle frame 30 at a first end 34a of the actuator 34. Preferably, the first body 34 is provided as a hydraulic cylinder. A distribution bar 36 is pivotally mounted at the opposite end 34b of the linear actuator 34, the distribution bar 36 mounted to the linear actuator 34 at a midpoint of the distribution bar 36.
(11) A lift link 38 is provided as a generally triangle-shaped beam, but it will be understood that other link shapes may be provided. The lift link 38 is pivotally mounted to the frame 30 at a pivot point located at a first vertex 38a of the triangle-shaped beam. The lift link 38 is pivotally coupled to a first end 36a of the distribution bar 36 at a first end of the lift link 38, located at a second vertex 38b of the triangle-shaped beam.
(12) A push link 40 is further provided, a first end 40a of the push link 40 pivotally coupled with a second end 36b of the distribution bar 36, opposite the first end 36a of the distribution bar 36. The first and second ends 36a,36b of the distribution bar 36 are located on opposite sides of the pivotal connection to the linear actuator 34.
(13) The wheel suspension further comprises 32a further comprises a wheel carrier 42 which defines a wheel axis for a ground-contacting element to be mounted to the wheel carrier 42, partly shown in outline in
(14) As a result of the pivotal connections of the different links of the wheel suspension 32a, the wheel carrier 42 and the wheel axis defined by the wheel carrier 42 are adjustable relative to the axle frame 30. In particular, as the wheel carrier 42 is effectively mounted to the axle frame 30 at the first end 34a of the actuator 34 and the pivoted coupling at 38a of the lift link 40, a distributed linkage is provided which can be used to bring the wheel axis of the wheel carrier 42 parallel to an underlying surface, to maximise the ground-contacting surface area of a ground-contacting element mounted to the wheel carrier 42. The distribution bar 36 acts to balance the movement forces applied to the wheel carrier 42 via the lift link 38 and the push link 40. The configuration of the wheel suspension allows for the wheel axis to passively follow the surface profile, as any loads transmitted through the wheel carrier act to level out the wheel suspension to align with the underlying surface.
(15) With reference to
(16) The actuation of the linear actuators 34 of the wheel suspensions 32a,32b may be individually controlled and adjusted by a central controller 50 provided as part of the vehicle 44. In an additional or alternative aspect, when the linear actuators 34 are provided as hydraulic cylinders, the wherein hydraulic chambers of the respective hydraulic cylinders 34 of the left and right wheel suspensions 32a,32b can be fluidly connected. Linking of the cylinders of the suspensions allows for a self-balancing across the actuators between the left and right wheel suspensions 32a,32b. Such a passive adjustment of the actuators provides a reactive self-levelling system, for when the axle 28 is traversing uneven ground.
(17) With reference to
(18) It will be understood that further variations of the system may be provided, for example an application where a 4-bar linkage is provide having a connection sensitive to wheel torque.
(19) The wheel axle 38 of the invention may be provided as part of any suitable agricultural vehicle, preferably a combine harvester.
(20) By providing for adjustment of the vertical alignment of the wheel carriers of the axle, as a result the wheel axes of both the left and right wheel can be separately aligned with the slope of the underlying surface. Accordingly, wheels or tracks carried on the wheel axle can be configured to more closely follow the ground slope, thereby ensuring maximum ground-contacting surface area.
(21) In a further aspect, an example of an alternative construction of a wheel axle is shown in
(22) The wheel axle 100 further comprises left and right actuators 112,114 each coupled to the frame 102 and to the first links 108 of the left and right wheel carriers 104,106. The actuators 112,114 can be adjusted in order to vary the position of the 4-bar linkages.
(23) In contrast to the parallel 4-bar linkage systems of the prior art as illustrated in
(24) The invention is not limited to the embodiments described herein, and may be modified or adapted without departing from the scope of the present invention.