A WHEEL LOADER FRONT UNIT AND A WHEEL LOADER
20190071844 · 2019-03-07
Assignee
Inventors
Cpc classification
E02F9/0841
FIXED CONSTRUCTIONS
E02F9/0808
FIXED CONSTRUCTIONS
International classification
Abstract
The invention provides a wheel loader front unit including a frame, the wheel loader front unit further including two hub supporting elements, each hub supporting element being arranged on opposite sides outside of the frame for supporting a respective hub unit, a lift arm for supporting an implement of the wheel loader, the lift arm being arranged to be pivoted around a pivot connection to the frame by a main hydraulic cylinder, and a tilting hydraulic cylinder arranged to actuate a tilting movement of the implement in relation to the lift arm, wherein the wheel loader front unit further includes a slave hydraulic cylinder hydraulically connected to the tilting hydraulic cylinder for controlling the tilting movement of the implement when the lift arm is pivoted by the main hydraulic cylinder, wherein the slave hydraulic cylinder extends between the lift arm and one of the hub supporting elements.
Claims
1. A wheel loader front unit comprising a frame, the wheel loader front unit further comprising two hub supporting elements, each huh supporting element being arranged on opposite sides outside of the frame for supporting a respective hub unit, a lift arm for supporting an implement of the wheel loader, the lift arm being arranged to be pivoted around a pivot connection to the frame by means of a main hydraulic cylinder, and a tilting hydraulic cylinder arranged to actuate a tilting movement of the implement in relation to the lift arm, wherein the of loader from unit further comprises a slave hydraulic cylinder hydraulically connected to the tilting hydraulic cylinder for controlling the tilting movement of the implement when the lift arm is pivoted by means of the main hydraulic cylinder, wherein the slave hydraulic cylinder extends between the lift arm and one of the hub supporting elements.
2. A wheel loader front unit according to claim 1, wherein the slave hydraulic cylinder is arranged to transfer forces directly between the lift arm and the hub supporting element.
3. A wheel loader front unit according to claim 1, wherein, the slave hydraulic cylinder is pivotally connected to the hub supporting element at a first mounting point and to the lift arm at a second mounting point.
4. A wheel loader front unit according to claim 3, wherein the hub supporting elements define a position of a wheel axis, and the first mounting point is situated in the vicinity of the wheel axis.
5. A wheel loader front unit according to claim 3, wherein the hub supporting elements define a position of a wheel axis, and the first mounting point is located above the wheel axis when the wheel loader front unit forms a part of a wheel loader and the wheel loader is supported on a horizontal support surface.
6. A wheel loader front unit according to claim 3, wherein the hub supporting elements define a position of a wheel axis, and a ratio between a horizontal distance (HD1) between the wheel axis and the first mounting point and a horizontal distance (HD2) between the wheel axis and the pivot connection of the lift arm to the frame is less than 30%, where the horizontal distances are measured along a longitudinal axis being parallel to a direction of straight travel of the wheel loader when the wheel loader front unit forms a part of the wheel loader.
7. A wheel loader front unit according to claim 1, wherein the slave hydraulic cylinder comprises a cylinder portion and a piston portion which are movable in relation to each other along an actuation direction of the slave hydraulic cylinder, the cylinder portion being pivotally connected to the hub supporting element and the piston portion being pivotally connected to the lift arm.
8. A wheel loader front unit according to claim 1, wherein the wheel loader front unit comprises two slave hydraulic cylinders each extending between the lift arm and a respective of the hub supporting elements.
9. A wheel loader front tarot according to claim 8, wherein each slave hydraulic cylinder is pivotally connected to the lift arm on a respective lateral side of the lift arm.
10. A wheel loader front unit according to claim 9, wherein each slave hydraulic cylinder is pivotally connected to the respective hub supporting element on a lateral side of the lift arm, which is the same as the lateral side on which the respective slave hydraulic cylinder is pivotally connected to the lift arm.
11. A wheel loader front unit according to claim 1, wherein the frame comprises two side plates and an intermediate central structure connecting the side plates to each other.
12. A wheel loader front unit according to claim 11, wherein each hub supporting element is arranged outside of a respective of the side plates.
13. A wheel loader front unit according to claim 11, wherein the lift arm is pivotable to a position where at least a major part of the lift arm is positioned between the side plates.
14. A wheel loader front unit according to claim 1, wherein the lift arm is located centrally between the hub supporting elements.
15. A wheel loader front unit according to claim 1, wherein the main hydraulic cylinder is located centrally between the hub supporting elements.
16. A wheel loader front unit according to claim 1, wherein when the wheel loader front unit forms a part of a wheel loader, the lift arm is pivotable between an upper end position and a lower end position, and that the main hydraulic cylinder presents a frame end at which it is pivotally connected to the frame and a lift arm end at which it is pivotally connected to the lift arm, in the lower end position of the lift arm the frame end of the main hydraulic cylinder being at a higher position than the lift arm end of the main hydraulic cylinder.
17. A wheel loader from unit according to claim 1, wherein the wheel loader front unit is arranged to be mounted to a rear unit of the wheel loader via a pivotable coupling arranged to allow the front and rear units to pivot in relation to each other around a pivoting axis which is substantially vertical when the wheel loader is supported on a horizontal surface.
18. A wheel loader front unit according to claim 1, wherein the wheel loader front unit comprises hub units and each hub supporting element supports one hub unit, each hub unit comprising a hub motor for propulsion of the wheel loader.
19. A wheel loader comprising a wheel loader front unit according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
[0027] In the drawings;
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034]
[0035] The pivotable coupling 104 is arranged to allow the front and rear units to pivot in relation to each other around a pivot axis 105 which is substantially vertical when the wheel loader 1 is supported on a horizontal surface. Two steering hydraulic cylinders 110 are arranged on opposite sides of the wheel loader 1 for turning the wheel loader by means of relative movement of the front unit 102 and the rear unit 103. In other words, the wheel loader I is articulated and frame steered by means of the steering hydraulic cylinders 110.
[0036] The rear unit 103 of the wheel loader 1 comprises an engine compartment 111 with an internal combustion engine and a radiator system 112. The rear unit 103 further comprises a driver compartment 113, herein also referred to as a cab.
[0037] The wheel loader 1 has an electric hybrid propulsion system. More specifically, the propulsion system is provided in a series electric hybrid configuration. The internal combustion engine is connected to a generator, in turn connected to an electric storage arrangement in the form of a battery pack. At each wheel 106, 107 an electric propulsion motor and a service brake are provided in the respective hub unit 13. Each torque generating means 13 comprises in addition a braking means 161 of a vehicle brake system.
[0038] It should be noted that the invention is applicable to working machines with other types of propulsion systems, e.g. fully electric propulsion systems, or traditional internal combustion engine and drivetrain combinations.
[0039] The wheel loader 1 comprises an implement 14. The term implement is intended to comprise any kind of tool suitable for a wheel loader, such as a bucket, a fork or a gripping tool. The implement 14 illustrated in
[0040] The lift arm 6 is at a first end rotatably or pivotably connected to the frame 3 at a first pivot connection 7. The implement 14 is mounted to the lift arm 6 at a second pivot connection 141 at a second end of the lift arm 6. The lift arm 6 is arranged to be pivoted around the first pivot connection 7 by means of a main hydraulic cylinder 8 being part of a hydraulic system of the wheel loader. Thereby the lift arm 6 is pivotable between an upper end position and a lower end position.
[0041] The wheel loader also comprises a tilting hydraulic cylinder 9 arranged to actuate a tilting movement of the implement 14 in relation to the lift arm 6. For this the implement 14 is pivotally mounted to the lift arm 6 at the second pivot connection 141 The tilting hydraulic cylinder 9 extends from the lift arm 6 to a linkage mechanism 901, which is adapted to transfer movements from the tilting hydraulic cylinder 9 to the implement 14.
[0042] Reference is made to
[0043] As seen from the front of the wheel loader, the lift arm 6 and the main hydraulic cylinder 8 are located centrally between the side plates 11. Further the main hydraulic cylinder 8 is located below the lift arm 6. The main hydraulic cylinder 8 presents a frame end at which it is pivotally connected to the frame 3, and a lift arm end 802 at which it is pivotally connected to the lift arm 6. The frame end of the main hydraulic cylinder 8 is pivotally connected to the side plates 11 of the frame 3. The first pivot connection 7 connects the lift arm 6 to the side plates 11 of the frame 3. More specifically, each side plate 11 may present an ear 1101 at an upper end of the respective side plate 11. The first end of lift arm 6 is located between the side plate ears. Thus, the lift arm mounting point 7 is provided by said two ears of the side plates 11. In alternative embodiments, the lift arm may be connected to the central structure of the frame 3. The frame end of the main hydraulic cylinder 8 is located below the first pivot connection 7 at which the lift arm 6 is pivotally connected to the side plates 11. Thus, when the lift arm 6 is in its lower end position, major parts of the lift arm 6 and the main hydraulic cylinder 8 are positioned between the side plates 11. The main hydraulic cylinder 8 is arranged in a so called high-mount design. Thus when the lift arm 6 is in its lower end position, the frame end of the main hydraulic cylinder 8 is higher than the lift arm end 802.
[0044] In should be noted that the side plates 11 may be provided from a single work piece, such as a steel plate of a suitable thickness. The side plates may be reinforced as required. In alternative embodiments each side plate 11 may be formed by two or more portions which are joined, e.g. by welding. For example, the lower part of each side plate 11 may be provided from a steel plate of a certain thickness, while the upper part of each side plate 11, with the side plate ear 1101, may be provided from a work piece of another thickness.
[0045] The wheel loader front unit 102 further comprises two hub supporting elements 12. Each hub supporting element 12 is arranged outside of a respective of the side plates 11, and thereby mounted to the respective side plate 11, e.g. by welding. The hub supporting elements 12 supports a respective of the hub units 13. The hub units 13 are located outside of the hub supporting elements. Thus, the frame 3, the lift arm 6 and the main hydraulic cylinder 8 are located centrally between the hub supporting elements 12.
[0046] The hub supporting elements 12 have an elongated shape and extend in the direction of straight travel of the wheel loader. Each hub unit 13 is mounted to the forward end of the respective huh supporting element 12. The respective hub supporting element 12 has a circularly shaped interface 1201 for mating with the hub unit 13. The front wheel axis 108 extends through the center of the interface 1201. Thereby, the hub supporting elements 12 define with their design and their position on the frame 3 the position of the front wheel axis 108. The elongated shape of the hub supporting elements 12 support the structural properties of the front unit 102. The hub supporting elements may house wheel loader components, such as hydraulic components, e.g. hydraulic conduits.
[0047] The front unit further comprises two slave hydraulic cylinders 10, the functions of which are described below with reference to
[0048] Each slave hydraulic cylinder 10 is pivotally connected to the lift arm 6 on a respective lateral side of the lift arm 6. Herein a lateral direction is understood as a horizontal direction which is perpendicular to the direction of straight travel of the wheel loader when the wheel loader is supported on a horizontal surface. Each slave hydraulic cylinder 10 is pivotally connected to the respective hub supporting element 12 on a lateral side of the lift arm, which is the same as the lateral side on which the respective slave hydraulic cylinder 10 is pivotally connected to the lift arm; i.e. the slave hydraulic cylinders 10, as projected on a vertical lateral plane extending transversely to the direction of straight travel of the wheel loader, do not intersect.
[0049] The distance between the second mounting point 1002 and the first pivot connection 7, which connects the lift arm 6 to the central structure 5 of the frame 3, is shorter than the distance between the first mounting point 1001 and the first pivot connection 7. Each slave hydraulic cylinder 10 comprises a cylinder portion 1003 and a piston portion 1004 which are movable in relation to each other along an actuation direction of the slave hydraulic cylinder 10. The cylinder portion 1003 is pivotally connected to the hub supporting element 12 and the piston portion 1004 is pivotally connected to the lift arm 6.
[0050] It is understood that the single main hydraulic cylinder 8 is located laterally between the slave hydraulic cylinders 10. The single lift arm 6 is located laterally between the slave hydraulic cylinders 10. The frame 3 is located laterally between the slave hydraulic cylinders 10
[0051] As can be seen from the cut view in
[0052] Reference is made to
[0053] In addition, the slave hydraulic cylinders 10 are hydraulically connected to the tilting hydraulic cylinder 9 for controlling the tilting movement of the implement when the lift arm 6 (
[0054] For this, a piston rod side of the respective slave hydraulic cylinder 10 is hydraulically connected via a respective first hydraulic conduit 154 to a piston rod side of the tiling hydraulic cylinder 9, and a piston side of the respective slave hydraulic cylinder 10 is hydraulically connected via a respective second hydraulic conduit 155 to a piston side of the tiling hydraulic cylinder 9. When the lift arm 6 (
[0055] Correspondingly, when the lift arm 6 (
[0056] By extending between the lift arm 6 and the hub supporting elements 12 the slave cylinders 10 are arranged to transfer forces directly between the lift arm 6 and the hub supporting elements 12. Thus, the frame 3, including the side plates 11, is advantageously by-passed, whereby the frame 3 does not have, to be structurally designed to manage all loads acting from the lift arm.
[0057] Reference is made to
[0058] As can be seen, the first mounting point 1001, at which the respective slave hydraulic cylinder 10 is pivotally connected to the respective hub supporting element 12, is in the vicinity of the front wheel axis 108. The first mounting points 1001 are located above the front wheel axis 108. Further the first mounting points 1001 are located in front of the front wheel axis 108 in the direction of straight travel of the wheel loader. In the example embodiment, a ratio between a horizontal distance HD1, between the front wheel axis 108 and the first mounting points 1001, and a horizontal distance HD2, between the front wheel axis 108 and the first pivot connection 7 of the lift arm 6 to the frame 3, is approximately 10%.
[0059]
[0060] It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within, the scope of the appended claims.