WHEEL CARRIER FOR A TWO-TRACK MOTOR VEHICLE
20170217491 · 2017-08-03
Assignee
Inventors
- WOLFGANG SCHMID (Freising, DE)
- Thomas Klinger (Ingolstadt, DE)
- ULRICH VOLL (München, DE)
- MICHAEL BRAUMANDL (Allershausen, DE)
- HEINRICH BERINGER (Denkendorf, DE)
- ACHIM GLAS (Gaimersheim, DE)
Cpc classification
B60G2206/50
PERFORMING OPERATIONS; TRANSPORTING
B60G17/0157
PERFORMING OPERATIONS; TRANSPORTING
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B62D7/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A wheel carrier for a two-track motor vehicle including a wheel-side carrier part, which carries a vehicle wheel; an axle-side guide part; axle-side rotary parts arranged between the wheel-side carrier part and the axle-side guide part and supported on a common bearing site for rotation relative to each other about a rotation axis by respective rotation angles, wherein the carrier part is pivotable about the rotation axis about a pivot point for toe and/or camber adjustment of the vehicle wheel by rotation of at least one of the rotary parts by the respective rotation angle into a rotary position, which correlates with a toe and/or camber angle of the vehicle wheel, wherein the toe and/or camber angle being arbitrarily adjustable within a toe and/or camber angular range. The wheel carrier further includes at least one movement stop adapted for limiting the toe and/or camber angular range of the vehicle wheel.
Claims
1.-13. (canceled)
14. A wheel carrier for a two-track motor vehicle, comprising: a wheel-side carrier part which carries a vehicle wheel; an axle-side guide part; axle-side rotary parts arranged between the wheel-side carrier part and the axle-side guide part, said axle-side rotary parts being supported on a common bearing site for rotation relative to each other about a rotation axis by respective rotation angles in a same direction or opposite directions of rotation, said carrier part being pivotable about the rotation axis about a pivot point for toe and/or camber adjustment of the vehicle wheel by rotation of at least one of the rotary parts by the respective rotation angle into a rotary position, which correlates with a toe and/or camber angle of the vehicle wheel, said toe and/or camber angle being arbitrarily adjustable within a toe and/or camber angular range; and at least one movement stop adapted for limiting the toe and/or camber angular range of the vehicle wheel.
15. The wheel carrier of claim 14, wherein the wheel-side carrier part the and the axle-side guide part are rotatively fixed, and wherein the at least one movement stop is constructed as a rotary angular stop, which limits a rotary adjustment between the rotatively fixed wheel-side carrier part and the wheel-side rotary part and/or between the rotatively fixed axle-side guide part and the axle-side rotary part.
16. The wheel carrier of claim 14, wherein the rotary angular stop limits the rotary adjustment of the rotary part to an angular segment smaller than 360°,
17. The wheel carrier of claim 14, wherein the rotary angular stop limits the rotary adjustment of the rotary part to an angular segment smaller than 180°,
18. The wheel carrier of claim 14, further comprising plural said at least one movement stop which interact with respective confronting ends of toothings of the rotary parts.
19. The wheel carrier of claim 14, wherein the at least one movement stop during a toe-/camber adjustment of the vehicle wheel limits a displacement path of the carrier part in a direction towards the guide part.
20. The wheel carrier of claim 14, wherein the at least one movement stop has pressure elements, which are formed on the carrier part and/or on the guide part, and which are engageable in pressure contact with each other during a toe-/camber adjustment of the vehicle wheel.
21. The wheel carrier of claim 14, wherein the at least one movement stop has tappet elements, which are interposed between the rotary parts.
22. The wheel carrier of claim 14, wherein the at least one movement stop during a rotary adjustment of at least one of the rotary parts generates a movement coupling in which the two rotary parts are adjustable over an adjustment path in a same direction and with identical adjustment speeds.
23. The wheel carrier of claim 15, further comprising a further movement stop, with at least one of the further movement stop and the rotary angular stop having mechanical stop elements which are formed on at least one of the wheel side carrier part, the rotary parts and the axle side guide element.
24. The wheel carrier of claim 14, wherein the at least one movement stop is configured as an electronic movement stop.
25. The wheel carrier of claim 14, wherein the at least one movement stop is configured as an end position switch.
26. The wheel carrier of claim 14, further comprising an electronic controller having an analysis unit and adapted for implementing the toe and/or camber adjustment and for determining as a function of driving operating parameters of the vehicle value pairs consisting of a rotary angle for the rotary part and of a rotary angle for one of the rotary parts, with a drive unit of the rotary parts being controllable unit based said value pairs.
27. The wheel carrier of claim 14, wherein a wheel-side one of the rotary parts is rotably connected with the wheel-side carrier part at a bearing site and defines a first rotary part axis and an axle-side one of the rotary parts is rotatably connected with the guide part at another bearing site and defines a second rotary part axis.
28. The wheel carrier of claim 27, wherein in a zero position the first and second rotary part axes are coaxial relative to each other so as to form a singularity and wherein the toe and camber angles that correlate with the zero position are situated outside of the toe-/camber range of the vehicle wheel defined by the at least one movement stop.
29. The wheel carrier of claim 27, wherein in a zero position the first and second rotary part axes are coaxial relative to each other so as to form a singularity and wherein for avoiding the singularity a position of the first and second axes of the rotary parts is selected so that the first and second axes are not arranged coaxial to each other at any operating time point.
30. The wheel carrier of claim 14, wherein at least one of the rotary parts has an outer toothing, which is a part of a gear stage which is drivingly connected with a rotary part drive unit and that the outer toothing, with the outer toothing extending partially about the rotary part over an angular segment.
31. The wheel carrier of claim 14, wherein the at least one movement stop is configured for reducing load peaks with correspondingly soft characteristic curves, and wherein the characteristic curves can have different digressive, progressive or linear courses.
32. The wheel carrier of claim 14, wherein the at least one movement stop forms an input for teaching a rotary angle sensor system which is adapted for detecting the angular positions of the rotary parts, and wherein upon contact of the at least one movement stop the sensor system recognizes a respective absolute position of the rotary parts.
33. The wheel carrier of claim 14, wherein the movement stops are taken into account in the electronic control device.
Description
[0020] In the following the invention and its advantageous embodiments and refinements and their advantages are explained in more detail by way of drawings.
[0021] It is shown in:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] The wheel carrier also has a guide part 17 on which in
[0030]
[0031] On the carrier part 3 as well as on the guide part 17 a respective actuating motor 29, which is only shown in
[0032] The actuating motors 29 are shown in
[0033] The axle-side guide part 17—analogous to the wheel-side carrier part 3—is supported in a rotary bearing 51 radially outward on the axle-side rotary part 23. Further inwards in vehicle transverse direction y a further gearwheel section 55 is exemplarily formed on the outer circumference of the axle-side rotary part 23, which gearwheel section is also a part of the gear drive 30. The gear\wheel section 55 of the axle-side rotary part 23 is positioned in an annular space, which is delimited outwardly by the rotary bearing 51 and inwardly by an annular gasket, which is arranged between the guide part 17 and the axle-side rotary part 23. In addition further not shown gaskets can be present in the system.
[0034] In addition between the carrier part 3 and the guide part 17 in
[0035] As can be seen from
[0036] The movement stops A1 and B1 indicated in
[0037] The movement stop C, which is only shown in
[0038]
[0039]
[0040] In the following different camber-/toe ranges S, which are defined by the provision of different movement stops, are exemplarily shown by way of the diagrams of
[0041] In contrast thereto in
[0042] The movement stop C, which is directly interposed between the carrier part 3 and the guide part 17, is subjected to very great forces due to the own transmission ratio of the actuator (i.e., the rotary parts 21, 23) and therefore has to be configured correspondingly robust and with this has a great weight. On the other hand the movement stops A, B, D on the rotary parts 21, 23 can be implemented particularly easily and with a low weight and low costs. In addition the stops A, B, D are not as sensitive regarding tolerances as the stop C.
[0043] In light of the foregoing the exemplary embodiment shown in
[0044] Depending on the circumferential length of the tappet elements 63 the movement stop D can also act on both sides. Correspondingly the adjustment range β, θ would be formed between two angle bisectors in the diagram of
[0045] The movement stops A1, A2, B1, B2, C, D described above can also be taken into account in the electronic controller 30. In particular the mechanical movement stops A1, A2, B1, B2, C, D can be used to train the rotary angular senor system for detecting the angular positions of the rotary parts 21, 23.