Steering device and method thereof
11548552 · 2023-01-10
Assignee
Inventors
- Peng-Yu Chen (Toufen, TW)
- Chia Tsao (New Taipei, TW)
- Cheng-Han Ho (Tainan, TW)
- Yu-Chun Hsiao (Yuanlin, TW)
- Fang-Ming Lee (Taoyuan, TW)
Cpc classification
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B60G17/0195
PERFORMING OPERATIONS; TRANSPORTING
B62D5/0418
PERFORMING OPERATIONS; TRANSPORTING
B62D9/04
PERFORMING OPERATIONS; TRANSPORTING
B60G2200/144
PERFORMING OPERATIONS; TRANSPORTING
B62D7/166
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B62D5/04
PERFORMING OPERATIONS; TRANSPORTING
B62D7/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A steering device includes a steering power unit, a transmission unit, an upper control arm, a steering element, an eccentric bolt and a steering knuckle. The steering power unit has at least one torque-output end. The transmission unit is connected with the torque-output end. The steering element is connected with the transmission unit. The eccentric bolt, installed at the upper control arm, is connected with the steering power unit. The steering knuckle, mounted to a wheel disc, is connected with the steering element and the upper control arm, and used for controlling the wheel disc. The steering power unit drives the steering element to push or pull the steering knuckle for controlling a turning angle, and simultaneously drives the eccentric bolt to have the upper control arm to push or pull the steering knuckle for varying a camber angle of the wheel disc. In addition, a steering method is provided.
Claims
1. A steering device, comprising: a steering power unit, having at least one torque-output end, wherein the at least one torque-output end includes a first torque-output end and a second torque-output end; a transmission unit, connected with the torque-output end; an upper control arm; a steering element, connected with the transmission unit; an eccentric bolt, installed at the upper control arm, connected with the steering power unit; a steering knuckle, mounted to a wheel disc, connected with the steering element and the upper control arm, used for controlling the wheel disc; wherein the steering power unit is electrically connected with a human-machine interface controller, and the steering power unit receives a steering signal via the human-machine interface controller; wherein the steering power unit drives the steering element to push or pull the steering knuckle for controlling a turning angle; wherein the steering power unit simultaneously drives the eccentric bolt to have the upper control arm to push or pull the steering knuckle for varying a camber angle of the wheel disc.
2. The steering device of claim 1, wherein the transmission unit further includes a transmission member and a screw bar unit, the transmission member is connected with the first torque-output end of the steering power unit, and the screw bar unit drives the steering element.
3. The steering device of claim 2, wherein the eccentric bolt further includes a power-transmitting member and a cam, the power-transmitting member is a gear to transform rotational motion of the torque-output end into linear motion.
4. The steering device of claim 3, further including a power-driving screw, connected with the second torque-output end and the power-transmitting member, used for rotating the cam to move the upper control arm and the steering knuckle for adjusting the camber angle.
5. The steering device of claim 2, wherein the transmission member is one of a chain, a belt and a gear rack for speed modulation.
6. The steering device of claim 1, wherein the transmission unit includes a transmission member and a gear rack unit, the transmission member is connected with the torque-output end, the transmission member drives the gear rack unit, and the gear rack unit is connected with the steering element.
7. The steering device of claim 6, wherein the eccentric bolt includes a transmission shaft and a cam, the transmission shaft, connected with the torque-output end, rotates the cam to move the upper control arm and the steering knuckle for adjusting the camber angle.
8. The steering device of claim 7, wherein the torque-output end of the steering power unit drives the eccentric bolt via a belt.
9. The steering device of claim 6, wherein the transmission member is one of a chain, a belt and a gear rack for speed modulation.
10. The steering device of claim 1, wherein the steering power unit is a motor, and the steering element is a tie rod.
11. A steering method, comprising the steps of: (1) applying a steering power unit to receive a steering signal issued by a human-machine interface controller; (2) activating the steering power unit, upon when the steering signal is received; (3) outputting a torque/rotational speed by the steering power unit to drive a transmission unit and further a steering element; (4) operating a steering knuckle by the steering element to control a wheel disc to vary a turning angle of a wheel, the steering knuckle being mounted to the wheel disc and connected with an upper control arm and the steering element; and (5) outputting simultaneously the torque/rotational speed by the steering power unit to rotate an eccentric bolt connected with the upper control arm, through the eccentric bolt to move together the steering knuckle so as to vary the camber angle of the wheel disc; wherein the eccentric bolt of the step (5) and the steering element of the step (3) are synchronously activated; wherein when the eccentric bolt reaches a critical point, the steering element is activated to push or pull the steering knuckle; wherein the eccentric bolt and the steering element are defined with a proportional relationship.
12. The steering method of claim 11, wherein the human-machine interface controller of the step (1) is electrically connected with the steering power unit.
13. The steering method of claim 11, wherein the steering power unit is a motor.
14. The steering method of claim 11, wherein the transmission unit of the step (3) further includes a transmission member and a screw bar unit, the transmission unit drives the steering element via the screw bar unit, and the steering element is a tie rod.
15. The steering method of claim 14, wherein the transmission member is one of a chain, a belt and a gear rack for speed modulation.
16. The steering method of claim 13, wherein the steering knuckle of the step (4) is mounted to the wheel disc, and connected with the upper control arm and the steering element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present disclosure and wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
(8) Referring to
(9) In this embodiment, the steering device 1 is mounted to vehicle's chassis (not shown in the figure) via a suspension shock absorber 100 and the lower control arm 152.
(10) In this embodiment, the steering power unit 10, electrically connected with a human-machine interface controller (not shown in the figure), is activated after a steering signal is received by the human-machine interface controller. The first torque-output end 11 of the steering power unit 10 provides a torque/rotational speed to drive the transmission unit 13 and further the steering element 14 to push or pull the steering knuckle 16, and then the steering knuckle 16 connected with the wheel disc 17 can vary the turning angle of the wheel disc 17.
(11) On the other hand, the steering power unit 10 supplies simultaneously the torque/rotational speed, via the second torque-output end 12, to rotate the eccentric bolt 18, such that positioning of the upper control arm 151 as well as the steering knuckle 16 can be varied. Thereupon, geometrical relationship of the entire suspension system having the steering power unit 10 would be varied for adjusting the camber angle.
(12) Since the steering element 14 and the eccentric bolt 18 are synchronously driven by the same steering power unit 10, thus, after the eccentric bolt 18 reaches a critical point, the steering element 14 would push or pull correspondingly the steering knuckle 16. According to this disclosure, the eccentric bolt 18 and the steering element 14 are related in a predetermined proportional relationship.
(13) In this embodiment, the power-transmitting member 181 is formed as a gear. Through the power-transmitting member 181, a power of the steering power unit 10 is transmitted to the power-driving screw 19 via the second torque-output end 12, such that the rotational motion output from the steering power unit 10 can be transformed into the corresponding linear motion at the power-driving screw 19.
(14) In this embodiment, the steering power unit 10 is a motor, and the steering element 14 is a tie rod.
(15) In this embodiment, the transmission member 131 can be a chain, a belt or a gear rack for velocity modulation.
(16) Referring now to
(17) In this embodiment, the steering device 2 is mounted to vehicle's chassis (not shown in the figure) via a suspension shock absorber 200 and the lower control arm 252.
(18) In this embodiment, the steering power unit 20, electrically connected with a human-machine interface controller 30 (as shown in
(19) In this embodiment, when the steering power unit 20 is activated upon receiving a steering signal via the human-machine interface controller 30, the steering power unit 20 would the drive the steering element 24 to push or pull the steering knuckle 26, and further the wheel disc 27 is moved together with the steering knuckle 26, so that the turning angle of the wheel disc 27 can be changed.
(20) In this embodiment, the steering power unit 20 simultaneously drives the cam 282 at the eccentric bolt 28 to displace both the upper control arm 251 and the steering knuckle 26, such that the camber angle of the wheel disc 27 can be also varied.
(21) In this embodiment, since the steering element 24 and the eccentric bolt 28 are synchronously activated, thus as soon as the eccentric bolt 28 is moved to reach a critical point, the steering element 24 would then push or pull the steering knuckle 26 accordingly. The eccentric bolt 28 and the steering element 24 are defined with a specific proportional relationship. The critical point is related to a tire pattern. With different tire patterns, the critical point may not be the same.
(22) In this embodiment, the torque-output end 21 connecting the steering power unit 20 to the eccentric bolt 23 can be a transmission belt.
(23) In this embodiment, the steering power unit 20 can be a motor, and the steering element 24 can be a tie rod.
(24) In this embodiment, the transmission member 231 can be a chain, a belt or a gear rack for motion modulation.
(25) Referring now to
(26) In
(27) Based on experimental data,
(28) Further, from
(29) Referring now to
(30) In Step S1 of this embodiment, the human-machine interface controller is electrically connected with the steering power unit, and the steering power unit is a motor.
(31) In Step S3 of this embodiment, the transmission unit further includes a transmission member and a screw bar unit. The transmission unit drives the steering element via the screw bar unit. The transmission member can be a chain, a belt or a gear rack having a function of speed modulation, and the steering element is a tie rod.
(32) In Step S4 of this embodiment, the steering knuckle, mounted to the wheel disc, is connected with the upper control arm and the steering element.
(33) In Step S5 of this embodiment, between the steering power unit and the eccentric bolt, the torque/rotational speed is outputted to drive the eccentric bolt via a a screw gear set or a belt.
(34) In the steering method provided by this disclosure, the steering element and the eccentric bolt are synchronously activated. When the eccentric bolt reaches a critical point, the steering element is activated to push or pull the steering knuckle. In particular, the steering element and the steering knuckle are defined with a proportional relationship. This relationship is already presented by
(35) With respect to the above description then, it is to be realized that the optimum dimensional relationships for the parts of the disclosure, to include variations in size, materials, shape, form, function and manner of operation, assembly and use, are deemed readily apparent and obvious to one skilled in the art, and all equivalent relationships to those illustrated in the drawings and described in the specification are intended to be encompassed by the present disclosure.