BOGIE AXLE ASSEMBLY FOR A VEHICLE
20210031846 ยท 2021-02-04
Inventors
Cpc classification
B62D55/112
PERFORMING OPERATIONS; TRANSPORTING
B62D55/104
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A bogie axle assembly for a vehicle, in particular for an off-highway vehicle such as a forestry machine, the bogie axle assembly comprising: a rigid link arm; a first joint disposed on the link arm for pivotally coupling the link arm to a vehicle frame; a second joint disposed on the link arm, at a distance from the first joint; a bogie pivotally coupled to the link arm via the second joint; and a ground engaging structure comprising one or more wheels rotatably mounted on the bogie. The present disclosure further relates to a vehicle comprising said bogie axle assembly.
Claims
1. A bogie axle assembly for a vehicle, the bogie axle assembly comprising: a rigid link arm; a first joint disposed on the link arm for pivotally coupling the link arm to a vehicle frame; a second joint disposed on the link arm, at a distance from the first joint; a bogie pivotally coupled to the link arm via the second joint; and a ground engaging structure comprising one or more wheels rotatably mounted on the bogie.
2. The bogie axle assembly of claim 1, further comprising at least one of or both of: a first swivel control device for dampening or for actively controlling a swivelling movement of the link arm with respect to a first swivel axis defined by the first joint; and a second swivel control device for dampening or for actively controlling a swivelling movement of the bogie relative to the link arm.
3. The bogie axle assembly of claim 2, wherein the first swivel control device comprises at least one of a first mechanical spring, a first hydraulic cylinder and a first pneumatic cylinder, the first swivel control device pivotally coupled to the link arm via a first link arm pivot point disposed on the link arm at a distance from the first swivel axis.
4. The bogie axle assembly of claim 2, wherein the first swivel control device comprises a first rotary actuator including a first hydraulic rotary actuator, a first pneumatic rotary actuator, or a first electromagnetic rotary actuator.
5. The bogie axle assembly of claim 2, wherein the second swivel control device comprises at least one of a second mechanical spring, a second hydraulic cylinder and a second pneumatic cylinder, the second swivel control device pivotally coupled to the link arm via a second link arm pivot point disposed on the link arm at a distance from the second swivel axis, and the second swivel control device pivotally coupled to the bogie via a bogie pivot point disposed at a distance from the second swivel axis.
6. The bogie axle assembly of claim 2, wherein the second swivel control device comprises a second rotary actuator including a second hydraulic rotary actuator, a second pneumatic rotary actuator, or a second electromagnetic rotary actuator.
7. The bogie axle assembly of claim 4, wherein the first hydraulic rotary actuator and/or the first pneumatic actuator comprises: a first portion; a second portion pivotally mounted on the first portion; and at least one actuation chamber formed between the first portion and the second portion and configured to be pressurized and/or depressurized for swivelling the second portion relative to the first portion by means of a fluid pressure in the at least one actuation chamber.
8. The bogie axle assembly of claim 7, further comprising a fluid pump and one of a hydraulic accumulator and a pneumatic accumulator, wherein the fluid pump and the accumulator are selectively fluidly connected with the at least one actuation chamber.
9. The bogie axle assembly of claim 1, wherein the first joint is configured as a first swivel joint defining a first swivel axis, and wherein the second joint is configured as a second swivel joint defining a second swivel axis, the second swivel axis disposed at a distance from and arranged in parallel to the first swivel axis.
10. The bogie axle assembly of claim 1, further comprising a vehicle frame, wherein the link arm is pivotally coupled to the vehicle frame via the first joint.
11. The bogie axle assembly of claim 1, further comprising a rotary motor mounted on one of the link arm and the bogie and drivingly engaged with the wheels.
12. The bogie axle assembly of claim 11, wherein the rotary motor comprises at least one of an electric motor and a hydraulic motor.
13. The bogie axle assembly of any one of claim 2, further comprising: at least one of a gyrometer and an accelerometer configured to be mounted on a vehicle frame and configured to measure an attitude of the gyrometer and/or of the accelerometer relative to the horizon, the attitude comprising at least one of a roll angle and a pitch angle of the gyrometer and/or of the accelerometer relative to the horizon; and an electronic control unit in communication with the gyrometer and/or with the accelerometer and with at least one of or both of the first swivel control device and the second swivel control device, the electronic control unit configured or programmed to control at least one of or both of the first swivel control device and the second swivel control device based on an attitude measured by the gyrometer.
14. A vehicle, comprising: a vehicle frame; a first bogie assembly, comprising: a first rigid link arm; a first joint disposed on the first link arm, the first joint pivotally coupling the first link arm to the vehicle frame; a second joint disposed on the first link arm, at a distance from the first joint; a first bogie pivotally coupled to the first link arm via the second joint; and a first ground engaging structure comprising one or more wheels rotatably mounted on the first bogie; and a second bogie assembly, comprising: a second rigid link arm; a third joint disposed on the second link arm, the third joint pivotally coupling the second link arm to the vehicle frame; a fourth joint disposed on the second link arm, at a distance from the third joint; a second bogie pivotally coupled to the second link arm via the fourth joint; and a second ground engaging structure comprising one or more wheels rotatably mounted on the second bogie.
15. The vehicle of claim 14, wherein the first bogie assembly further comprises at least one of or both of: a first swivel control device for dampening or for actively controlling a swivelling movement of the first link arm relative to the vehicle frame, and a second swivel control device for dampening or for actively controlling a swivelling movement of the first bogie relative to the first link arm; and wherein the second bogie assembly further comprises at least one of or both of: a third swivel control device for dampening or for actively controlling a swivelling movement of the second link arm relative to the vehicle frame, and a fourth swivel control device for dampening or for actively controlling a swivelling movement of the second bogie relative to the second link arm.
16. The bogie axle assembly of claim 6, wherein the second hydraulic rotary actuator and/or the second pneumatic actuator comprises: a first portion; a second portion pivotally mounted on the first portion; and at least one actuation chamber formed between the first portion and the second portion and configured to be pressurized and/or depressurized for swivelling the second portion relative to the first portion by means of a fluid pressure in the at least one actuation chamber.
17. The bogie axle assembly of claim 16, further comprising a fluid pump and one of a hydraulic accumulator and a pneumatic accumulator, wherein the fluid pump and the accumulator are selectively fluidly connected with the at least one actuation chamber.
18. The bogie axle assembly of claim 4, wherein the second swivel control device comprises a second rotary actuator including a second hydraulic rotary actuator, a second pneumatic rotary actuator, or a second electromagnetic rotary actuator.
19. The bogie axle assembly of claim 18, wherein the first hydraulic rotary actuator and/or the second hydraulic rotary actuator and/or the first pneumatic and/or the second pneumatic actuator comprises: a first portion; a second portion pivotally mounted on the first portion; and at least one actuation chamber formed between the first portion and the second portion and configured to be pressurized and/or depressurized for swivelling the second portion relative to the first portion by means of a fluid pressure in the at least one actuation chamber.
20. The bogie axle assembly of claim 19, further comprising a fluid pump and one of a hydraulic accumulator and a pneumatic accumulator, wherein the fluid pump and the accumulator are selectively fluidly connected with the at least one actuation chamber.
Description
[0051] Special embodiments of the presently claimed bogie axle assembly and of the presently claimed vehicle are described in the following detailed description and in the accompanying drawing in which:
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[0060] In the embodiment depicted in
[0061] The bogie 3 is pivotally coupled to the link arm 2 via a second joint 8. The second joint 8 is a swivel joint mounted or at least partially mounted on the link arm 2 and defining a second swivel axis 9. The joints 6, 8 are configured such that the first swivel axis 7 and the second swivel axis 9 are arranged in parallel. The first joint 6 and the second joint 8 are disposed at a fixed non-zero distance from one another. Consequently, the first swivel axes 7, 9 defined by the joints 6, 8 are likewise disposed at a fixed non-zero distance from one another. Along a direction defined by the first swivel axis 7 and the second swivel axis 9, the first joint 6 and the second joint 8 are disposed on opposing sides of the link arm 2. Or in other words, along the direction defined by the first swivel axis 7 and the second swivel axis 9, the link arm 2 is disposed between the vehicle frame 5 and the bogie 3. The second joint 8 allows the bogie 3 to swivel or pivot relative to the link arm 2 and with respect to the second swivel axis 9. The second joint 8 is configured such that it restricts a swivelling movement of the bogie 3 relative to the link arm 2 to a plane arranged perpendicular to the second swivel axis 9. In other words, as the bogie 3 swivels relative to the link arm 2, each part or partial volume of the bogie 3 moves on a circle defining a plane perpendicular to the second swivel axis 9 and having the second swivel axis 9 at its center.
[0062] The assembly 1 further comprises a rotary motor 10. In the embodiment shown in
[0063] The rotary motor 10 may be an electric motor or a hydraulic motor, for example a variable displacement hydrostatic motor such as a radial piston motor or an axial piston motor. When the rotary motor 10 is configured as a hydraulic rotary motor, the assembly 1 typically further comprises a hydraulic pump in fluid communication with the hydraulic rotary motor for transmitting torque between the hydraulic pump and the hydraulic rotary motor, the hydraulic pump and the hydraulic rotary motor thereby forming a hydrostatic transmission. Usually, the hydraulic pump is drivingly engaged or selectively drivingly engaged with a vehicle engine such as an electric engine or an internal combustion engine.
[0064] The assembly 1 further comprises a first swivel control device 11 for controlling the swivelling movement of the link arm 2 with respect to the first swivel axis 7, in particular for controlling the swivelling movement of the link arm 2 relative to the vehicle frame 5. In the embodiment depicted in
[0065] The assembly 1 further comprises a second swivel control device 14 for controlling the swivelling movement of the bogie 3 with respect to the second swivel axis 9, in particular for controlling the swivelling movement of the bogie 3 relative to the link arm 2. In the embodiment depicted in
[0066] In addition or as an alternative to the second hydraulic cylinder 14a, the second swivel control device 14 may comprise a rotary actuator for actively tilting the bogie 3 relative to the link arm 2. In
[0067] An embodiment of such a hydraulic rotary actuator 14c is depicted in
[0068] The second annular portion 20b defines an annular recess 20c inside which the first annular portion 20a is concentrically received. The second annular portion 20b is pivotally mounted on the first annular portion 20a by means or a bearing 21 depicted in
[0069] The first annular portion 20a and the second annular portion 20b feature radial projections 20a and 20b which are disposed on an inner side of the first annular portion 20a along a radial direction arranged perpendicular to the second swivel axis 9. The projections 20a, 20b form mechanical stops that limit the swivelling movement of the second annular portion 20b relative to the first annular portion 20a in both rotational directions with respect to the second swivel axis 9. The radial projections 20a of the first annular portion 20a point towards the swivel axis 9, and the radial projections 20b of the second annular portion 20b point away from the swivel axis 9. It is understood that in alternative embodiments of the hydraulic rotary actuator 14c the radial projections 20a, 20b may be formed on an outer side of the first annular portion 20a such that the projections 20a of the first annular portion 20a point away from the swivel axis 9, and the radial projections 20b of the second annular portion 20b point toward the swivel axis 9.
[0070] Actuation chambers 23a-d are formed azimuthally between the radial projections 20a of the first annular portion 20a and the radial projection 20b of the second annular portion 20b. A volume of the actuation chambers 23a-d changes as the second annular portion 20b swivels relative to the first annular portion 20a, or vice versa. For example, as the second annular portion 20b rotates clockwise with respect to the first annular portion 20a in
[0071] The hydraulic rotary actuator 14c may be actuated by varying an amount of fluid and/or a fluid pressure inside the actuation chambers 23a-d. The fluid may include a liquid such as oil, for example. Specifically, by increasing an amount of fluid and/or a fluid pressure inside the actuation chambers 23b, 23d and by simultaneously draining or at least partially draining the actuation chambers 23a, 23c in
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[0073] Although not explicitly depicted in
[0074] The assembly 1 shown in
[0075] The ECU 31 is configured or programmed to actuate or control one of or both of the first swivel control device 11 and the second swivel control device 14 based on an attitude measured by the gyrometer/accelerometer 30. For example, the ECU may be configured or programmed to control a first swivel angle of the link arm 2 relative to the vehicle frame 5 and/or a second swivel angle of the bogie 3 relative to the link arm 2 based on one or both of a pitch angle and a roll angle of the vehicle frame relative to the horizon. In particular, the ECU 31 may be configured or programmed to control at least one of or both of the first swivel control device 11 and the second swivel control device 14 based on the measured attitude using feedback control. For example, the ECU 31 may be configured or programmed to control the first and/or the second swivel angle such that the vehicle frame 5 maintains a predefined attitude with respect to the horizon, thereby providing improved driveability even in rough terrain.
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