ADAPTIVE STABILIZER BAR WITH CYCLOIDAL DRIVE
20240278615 ยท 2024-08-22
Inventors
- Mark J. Nordhaus (Farmington, MI, US)
- Jeffrey D. Auten (West Bloomfield, MI, US)
- Jeffrey Chamberlin (Madison Heights, MI, US)
- Aidan Gusho (Birmingham, MI, US)
Cpc classification
F16H37/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G2204/82
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60G21/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An improved adaptive stabilizer bar is provided. The stabilizer bar includes a cycloidal drive between first and second portions of a divided torsion bar. The cycloidal drive includes a cycloidal gear assembly that provides a significant mechanical advantage, allowing relatively small electric motors to be used. In addition, the cycloidal gear assembly has a relatively small physical footprint, particularly when compared to a planetary gear assembly, for example.
Claims
1. An adaptive stabilizer bar comprising: a divided torsion bar having mutually facing ends; a cycloidal drive disposed between the mutually facing ends of the divided torsion bar, wherein the cycloidal drive includes an electric motor coupled to a cycloidal gear assembly to rotate a first portion of the divided torsion bar relative to a second portion of the divided torsion bar, wherein the cycloidal gear assembly includes: a cam drive gear intermeshed with an input gear that is rotatable by the electric motor, a cam shaft that rotates in unison with the cam drive gear, first and second cycloidal gears that oscillate by operation of the cam shaft, and a ring gear surrounding at least one of the first and second cycloidal gears.
2. The adaptive stabilizer bar of claim 1, wherein the cam shaft includes a first cam for engaging the first cycloidal gear and includes a second cam for engaging the second cycloidal gear, the second cam being axially offset from the first cam.
3. The adaptive stabilizer bar of claim 2, wherein the first cam rotates 180-degrees of out phase from the second cam.
4. The adaptive stabilizer bar of claim 1, wherein the divided torsion bar includes first and second longitudinal segments connected to first and second arm segments, respectively.
5. The adaptive stabilizer bar of claim 4, wherein the divided torsion bar is subjected to torsional forces when the first and second arm segments move relative to one another.
6. The adaptive stabilizer bar of claim 1, wherein the cycloidal gear assembly is housed within a gearbox housing, and wherein the electric motor is housed within a motor housing that extends from an exterior portion of the gearbox housing.
7. The adaptive stabilizer bar of claim 6, wherein the gearbox housing includes first and second co-axial openings for a first half-bar and a second half-bar of the divided torsion bar.
8. The adaptive stabilizer bar of claim 1, further including a plurality of rollers sandwiched between an outer portion of the second cycloidal gear and an inner portion of an output gear.
9. The adaptive stabilizer bar of claim 8, wherein the output gear includes a conical body that narrows from a first outer diameter to a second outer diameter.
10. The adaptive stabilizer bar of claim 1, wherein each of the first and second cycloidal gears include a plurality of lobes along an outer periphery thereof.
11. An adaptive stabilizer bar comprising: a divided torsion bar coupled to first and second arm segments, the first arm segment being disposed at a first end of the divided torsion bar for mounting to a first vehicle wheel, the second arm segment disposed at a second end of the divided torsion bar for mounting to a second vehicle wheel, wherein the divided torsion bar includes a first half-bar and a second half-bar and is subjected to a torsional load when the first and second arm segments move relative to each another a cycloidal drive disposed between the first half-bar and the second-half bar, the cycloidal drive being operable to rotate the first half-bar relative to the second half-bar by operation of an actuator that is mechanically coupled to the cycloidal drive, wherein the cycloidal drive includes: a cam drive gear intermeshed with an input gear that is rotatable by the actuator, a cam shaft that rotates in unison with the cam drive gear, first and second cycloidal gears that oscillate by operation of the cam shaft, and a ring gear surrounding at least one of the first and second cycloidal gears.
12. The adaptive stabilizer bar of claim 11, wherein the cam shaft includes a first cam for engaging the first cycloidal gear and includes a second cam for engaging the second cycloidal gear, the second cam being axially offset from the first cam.
13. The adaptive stabilizer bar of claim 11, wherein the cycloidal drive includes a gearbox housing, and wherein the actuator is housed within a motor housing that extends from an exterior portion of the gearbox housing.
14. The adaptive stabilizer bar of claim 11, wherein the gearbox housing includes first and second co-axial openings for the first half-bar and the second half-bar, respectively.
15. The adaptive stabilizer bar of claim 11, further including a plurality of rollers sandwiched between an outer portion of the second cycloidal gear and an inner portion of an output gear.
16. A cycloidal drive for an adaptive stabilizer bar, the cycloidal drive comprising: an electrical motor within a motor housing; and a cycloidal gear assembly within a gearbox housing, the electrical motor being coupled to the cycloidal gear assembly via an input gear, wherein the gearbox housing includes first and second co-axial openings for a first half-bar and a second half-bar of a divided torsion bar, wherein the cycloidal gear assembly includes a cam drive gear intermeshed with the input gear, an cam shaft that rotates in unison with the cam drive gear, first and second cycloidal gears that oscillate by operation of the cam shaft, and a ring gear surrounding at least one of the first and second cycloidal gears.
17. The cycloidal drive of claim 16, wherein the cam shaft includes a first cam for engaging the first cycloidal gear and includes a second cam for engaging the second cycloidal gear, the second cam being axially offset from the first cam.
18. The cycloidal drive of claim 16, wherein the cycloidal drive includes a gearbox housing, and wherein the actuator is housed within a motor housing that extends from an exterior portion of the gearbox housing.
19. The cycloidal drive of claim 16, wherein the gearbox housing includes first and second co-axial openings for the first half-bar and the second half-bar, respectively.
20. The cycloidal drive of claim 16, further including a plurality of rollers sandwiched between an outer portion of the second cycloidal gear and an inner portion of an output gear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
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DETAILED DESCRIPTION OF THE CURRENT EMBODIMENT
[0021] Turning now to
[0022] The torsion bar 14 is subjected to a torsional load when one arm segment 22 moves relative to the other arm segment 22. Each arm segment 22 is connected to a link assembly 24, which is coupled to a vehicle wheel (not shown). The adaptive stabilizer bar 10 also includes a first pivot bearing 26 coupled to the first half-bar 16 and a second pivot bearing 28 coupled to the second half-bar 18, with each bearing 26, 28 being configured for attachment to a vehicle body.
[0023] As shown in
[0024] Referring now to
[0025] Referring now to
[0026] As also shown in
[0027] Rotation of the cam shaft 50 imparts a rotation of each cycloidal gear 52, 54 around the internal circumference of the cycloidal ring gear 56. As shown in
In the illustrated embodiment, the cycloidal drive 12 provides a reduction ratio of 20:1, but other reduction ratios can be used in other embodiments. As shown in
[0028] To reiterate, the first and second cycloidal gear 52, 54 are set into a wobble motion via the rotation of the cam shaft 50 that is rotatably coupled to the cam drive gear 48. For every rotation of the cam shaft 50, the second cycloidal gear 54 advances one roller 62 on the ring gear 56. The output gear 58 rotates in unison with the second cycloidal gear 54, thus achieving a significant torque advantage and speed reduction in a compact environment. The cycloidal drive 12 is disposed between the mutually facing ends of the divided torsion bar 14, the cycloidal drive 12 being operable to rotate the second half-bar 18 relative to the first half-bar 16 by operation of an electric motor 44 that is mechanically coupled to the cycloidal drive 12.
[0029] Though described above in connection with a cycloidal drive, the stabilizer bar can alternatively include a harmonic drive. A harmonic drive can include, for example, a flexible spine with external teeth, which is deformed by rotating an elliptical cam to engage with the internal gears of an outer ring gear. Like the cycloidal drive, the harmonic drive can achieve a high reduction ratio, meaning that the electric motor can remain compact. For example, after one rotation of the elliptical cam, the flexible spine and the ring gear are rotated relative to each other by an amount equal to two or fewer gear teeth, resulting in a significant speed reduction.
[0030] The above description is that of current embodiment of the invention. Various alterations and changes can be made without departing from the spirit and broader aspects of the invention. This disclosure is presented for illustrative purposes and should not be interpreted as an exhaustive description of all embodiments of the invention or to limit the scope of any claims to the specific elements illustrated or described in connection with this embodiment. Any reference to elements in the singular, for example, using the articles a, an, the, or said, is not to be construed as limiting the element to the singular. Also, the terminologies upper, lower, above, below, etc. are intended for clarity of information while describing the embodiments as shown in the figures and are not to be construed as limiting the relationships between the geometric features of this invention.