VEHICLE TWIST AXLE ASSEMBLY
20210206225 ยท 2021-07-08
Inventors
Cpc classification
B60G2202/136
PERFORMING OPERATIONS; TRANSPORTING
B60B35/006
PERFORMING OPERATIONS; TRANSPORTING
B60G7/008
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/148
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/61
PERFORMING OPERATIONS; TRANSPORTING
B60G2200/21
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60G21/05
PERFORMING OPERATIONS; TRANSPORTING
B60B35/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The twist axle assembly includes a cross beam that extends along a length between opposite ends, and a pair of trailing arms are fixedly attached with the opposite ends. A spindle plate is fixedly attached with each of the trailing arms. For each spindle plate and trailing arm combination, the spindle plate and trailing arm are provided with cooperating orbital adjustment features which allow an orientation of the spindle plate relative to the trailing arm to be adjusted prior to the spindle plate being fixedly attached with the trailing arm for allowing preselection of a camber angle, a caster angle, and a toe angle for a wheel to be coupled with the spindle plate.
Claims
1. A twist axle assembly for a vehicle, comprising: a cross beam extending along a length between opposite ends; a pair of trailing arms, said trailing arms being fixedly attached with said opposite ends of said cross beam; a spindle plate fixedly attached with each of said trailing arms; and for each spindle plate and trailing arm combination, said spindle plate and trailing arm being provided with cooperating orbital adjustment features which allow an orientation of said spindle plate relative to said trailing arm to be adjusted prior to said spindle plate being fixedly attached with said trailing arm for allowing preselection of a camber angle, a caster angle, and a toe angle for a wheel to be coupled with said spindle plate.
2. The twist axle assembly as set forth in claim 1 wherein said cooperating orbital adjustment features include a male projection formed onto one of said spindle plate and said trailing arm and include a female socket formed into the other of said spindle plate and said trailing arm.
3. The twist axle assembly as set forth in claim 2 wherein at least one of said male projection and said female socket is curved radially inwardly or outwardly adjacent its respective distal end and wherein said male projection and said female socket are fixedly attached with one another via a weld joint that is locate at a ring of surface-to-surface contact between said male projection and said female socket.
4. The twist axle assembly as set forth in claim 3 wherein both of said male projection and said female socket are curved radially adjacent their respective distal ends.
5. The twist axle assembly as set forth in claim 3 wherein said female socket is a flange formed on said spindle plate and wherein said male projection is an end of said trailing arm.
6. The twist axle assembly as set forth in claim 5 wherein said spindle plate, including said flange, is made as a monolithic piece.
7. The twist axle assembly as set forth in claim 5 wherein said flange is initially made as a separate piece from and is fixedly attached with the remainder of said spindle plate.
8. The twist axle assembly as set forth in claim 3 wherein said female socket is an end of said trailing arm and wherein said male projection is a flange on said spindle plate.
9. The twist axle assembly as set forth in claim 8 wherein said spindle plate, including said flange, is made as a monolithic piece.
10. The twist axle assembly as set forth in claim 8 wherein said flange is initially made as a separate piece from and is fixedly attached with the remainder of said spindle plate.
11. A method of making a twist axle assembly, comprising the steps of: fixedly attaching trailing arms with opposite ends of a cross beam; for each of the trailing arms, inserting a male projection on the trailing arm or a spindle plate into a female socket on the other of the trailing arm or the spindle plate, and articulating the spindle plate relative to the trailing arm until the spindle plate is in a predetermined orientation with a ring of surface-to-surface contact being present between the male projection and the female socket, and fixedly attaching the spindle plate with the trailing arm at the ring of surface-to-surface contact to maintain the spindle plate in the predetermined orientation.
12. The method as set forth in claim 11 wherein the step of fixedly attaching the spindle plate with the trailing arm is further defined as welding the spindle plate to the trailing arm.
13. The method as set forth in claim 11 wherein the male projection is on the trailing arm and the female socket is on the spindle plate.
14. The method as set forth in claim 11 wherein the male projection is on the spindle plate and the female projection is on the trailing arm.
15. The method as set forth in claim 11 wherein at least one of the male projection and the female socket is curved radially inwardly or outwardly near its distal end to allow for the ring of surface-to-surface contact between the male projection and the female socket when the spindle plate is in the predetermined orientation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] These and other features and advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
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DESCRIPTION OF THE ENABLING EMBODIMENTS
[0029] Referring to the Figures, wherein like numerals indicate corresponding parts throughout the several views, a first exemplary embodiment of an improved twist axle assembly 20 for use in a vehicle system is generally shown in
[0030] In the exemplary embodiment, the cross beam 22 has an open faced, stamped sheet design. However, it should be appreciated that a crushed tube design, or any suitable design, could alternately be employed. The cross beam 22 can be fixedly attached with the trailing arms 24 through any suitable connection means including, for example, welding, fasteners, material deformation, etc.
[0031] Each trailing arm 24 extends from a first end that is fixedly attached with a bushing 28 for attachment with a vehicle frame (not shown) to a second end 30 that is fixedly attached with the respective spindle plate 26. Each trailing arm 24 has a first portion, which extends generally linearly from the first end, and a second portion, which curves outwardly, i.e., in an outboard direction. The cross beam 22 is fixedly attached (such as, through welding) with the trailing arm 24 in the linear first portion. A spring seat 32 is fixedly attached with the trailing arm 24 in the curved second portion. The trailing arms 24 may be made through any suitable operation or combination of operations including, for example, stamping, rolling, hydroforming, etc.
[0032] Each spindle plate 26 is joined with the trailing arm 24 via an orbitally adjustable connection means which includes a male projection on either the spindle plate 26 or the trailing arm 24 and a female socket on the other. As discussed in further detail below, the male projection and female socket are configured in such a manner that the spindle plate 26 can be adjusted about three axes into a wide range of orientations relative to the trailing arm 24 before these components are welded together. Each of the male projection and the female socket has a cross-sectional shape which is generally circular, and at least one of the male projection and the female socket is curved either radially inwardly or radially outwardly towards its respective distal end. The radially inward or outward curvature allows the spindle plate 26 to be articulated relative to the trailing arm 24 about two axis or to be rotated relative to the trailing arm 24 about a third axis after the male projection has been partially inserted into the female socket while maintaining a suitable surface of contact for welding between the male projection and the female socket.
[0033] By articulating and rotating the spindle plate 26 relative to the trailing arm 24, a user or robot can selectively choose the caster, camber, and toe angles that a wheel which will eventually be attached with the spindle plate 26 will have. No machining or additional finishing processes for the spindle plate 26 are necessary. Since the same components and the same manufacturing equipment to be used to create twist axle assemblies 20 that have different camber, caster, and toe angles, manufacturing cost savings through economies of scale can be realized.
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[0035] The flange 34 and the second end 30 of the trailing arm 24 are provided with corresponding curvatures which allow the spindle plate 26 to be articulated and rotated relative to the trailing arm 24 in the manner described above. More specifically, as it extends axially away from the inboard face of the spindle plate 26, the flange 34 is curved radially inwardly towards its distal end, and adjacent its end face, the second end 30 of the trailing arm is curved radially outwardly. These cooperating curvatures allow a ring of surface-to-surface contact to be established between the spindle plate 26 and the trailing arm 24 and allow this ring of contact to be maintained even as the spindle plate 26 is rotated and articulated through a wide range of different orientations. Once the spindle plate 26 is in the desired orientation, it is held in place, and an end face of the spindle plate 26 is welded to the trailing arm 24. The welding operation preferably forms a weld joint 36 which extends 360 around the trailing arm 24, thereby establishing a strong and durable permanent connection between the spindle plate 26 and the trailing arm 24.
[0036] For example,
[0037] In the first exemplary embodiment (
[0038] Referring now to
[0039] Referring now to
[0040] Referring now to
[0041] Referring now to
[0042] Referring now to
[0043] Referring now to
[0044] Referring now to
[0045] Referring now to
[0046] Another aspect of the present invention is related to a method of making a twist axle assembly 20, such as any of the embodiments discussed above. The reference numbers for the first embodiment shown in
[0047] The use of orientation terms, such as top, bottom and side, herein are in reference to the orientations of the features in one or more of the drawings, and these terms are not meant to require a particular orientation or otherwise be limiting in nature.
[0048] Obviously, many modifications and variations of the present invention are possible in light of the above teachings and may be practiced otherwise than as specifically described while within the scope of the appended claims. Additionally, it is to be understood that all features of all claims and all embodiments can be combined with each other, as long as they do not contradict each other.