Torsion spring arrangement for a wheel suspension arrangement of a motor vehicle, and wheel suspension arrangement for a wheel of an axle of a motor vehicle
11097585 · 2021-08-24
Assignee
Inventors
Cpc classification
B60G17/0157
PERFORMING OPERATIONS; TRANSPORTING
B60G17/025
PERFORMING OPERATIONS; TRANSPORTING
B60G11/20
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/82
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/418
PERFORMING OPERATIONS; TRANSPORTING
B60G2206/7101
PERFORMING OPERATIONS; TRANSPORTING
B60G17/023
PERFORMING OPERATIONS; TRANSPORTING
B60G11/18
PERFORMING OPERATIONS; TRANSPORTING
B60G2202/134
PERFORMING OPERATIONS; TRANSPORTING
B60G11/183
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/122
PERFORMING OPERATIONS; TRANSPORTING
B60G17/033
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/41
PERFORMING OPERATIONS; TRANSPORTING
B60G11/32
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60G11/32
PERFORMING OPERATIONS; TRANSPORTING
B60G17/033
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A torsion spring arrangement for a wheel suspension of a motor vehicle, including two torsion bars arranged coaxially one inside another and also a spring element, which is arranged axially-parallel to the two coaxial torsion bars and can be mounted on the motor vehicle body via a bearing position, wherein the radial outer hollow-cylindrical torsion bar can be mounted on the motor vehicle body side and is connected in a rotationally-fixed manner to an output lever fastenable on a wheel guiding element and the radial inner torsion bar is connected in a rotationally-fixed manner to the outer torsion bar and is connected in a rotationally-fixed manner via a coupling to the spring element.
Claims
1. A torsion spring arrangement for a wheel suspension of a motor vehicle, comprising: two torsion bars arranged coaxially one inside another and also a spring element, which is arranged with radial distance to the two coaxial torsion bars, is aligned in the axial direction of the torsion bars and can be mounted on the motor vehicle body via a bearing position, wherein the outer hollow-cylindrical torsion bar viewed in the radial direction can be mounted on the motor vehicle body side and is connected in a rotationally-fixed manner to an output lever fastenable on a wheel guiding element and the inner torsion bar viewed in the radial direction is connected in a rotationally-fixed manner to the outer torsion bar and in a rotationally-fixed manner to the spring element via a coupling, wherein the spring element is mounted via a spring element bearing on the coupling, which is designed in such a way that exclusively a translational deflection oriented in the tangential direction is applied to the spring element, and in that the bearing position mounting the spring element on the motor vehicle body side is designed as a fixed bearing.
2. The torsion spring arrangement as claimed in claim 1, wherein the spring element is designed in the form of a leaf spring.
3. The torsion spring arrangement as claimed in claim 2, wherein the leaf spring is formed from a metallic material or a fiber-composite material.
4. The torsion spring arrangement as claimed in claim 1, wherein the spring element bearing comprises a deflectable bearing element translationally guided via a guide, a first bearing part connected to the coupling and to the bearing element, and a second bearing part connected to the spring element and the bearing element, and also means which convert the rotational coupling movement into a translational movement of the bearing element and thus of the second bearing part.
5. The torsion spring arrangement as claimed in claim 4, wherein the means for converting the rotational coupling movement into a translational movement are designed in the form of a pivotable mounting of the coupling on the bearing element.
6. The torsion spring arrangement as claimed in claim 5, wherein for the pivotable mounting of the coupling on the bearing element, the coupling is pivotably mounted on the first bearing part around a first pivot axis (S.sub.1) aligned in parallel to the two torsion bars, and in that the first bearing part is pivotably arranged on the bearing element around a second pivot axis (S.sub.2) lying in parallel to the first pivot axis (S.sub.1).
7. The torsion spring arrangement as claimed in claim 4, wherein the means for converting the rotational coupling movement into a translational movement are formed in the form of a rubber-metal bearing arranged between the guide and the first and/or the second bearing part.
8. The torsion spring arrangement as claimed in claim 6, wherein the spring element is pivotably mounted on the second bearing part around a third pivot axis (S.sub.3) aligned perpendicular to the torsion bars and perpendicular to the guide.
9. The torsion spring arrangement as claimed in claim 2, wherein the spring element bearing comprises a deflectable bearing element translationally guided via a guide, a first bearing part connected to the coupling and to the bearing element, and a second bearing part connected to the spring element and the bearing element, and also means which convert the rotational coupling movement into a translational movement of the bearing element and thus of the second bearing part.
10. The torsion spring arrangement as claimed in claim 3, wherein the spring element bearing comprises a deflectable bearing element translationally guided via a guide, a first bearing part connected to the coupling and to the bearing element, and a second bearing part connected to the spring element and the bearing element, and also means which convert the rotational coupling movement into a translational movement of the bearing element and thus of the second bearing part.
11. A wheel suspension for a wheel of an axle of a motor vehicle, comprising a suspension spring acting between the motor vehicle body and a wheel guiding element, wherein the suspension spring is designed in the form of a torsion spring arrangement comprising: two torsion bars arranged coaxially one inside another and also a spring element, which is arranged with radial distance to the two coaxial torsion bars, is aligned in the axial direction of the torsion bars and can be mounted on the motor vehicle body via a bearing position, wherein the outer hollow-cylindrical torsion bar viewed in the radial direction can be mounted on the motor vehicle body side and is connected in a rotationally-fixed manner to an output lever fastenable on a wheel guiding element and the inner torsion bar viewed in the radial direction is connected in a rotationally-fixed manner to the outer torsion bar and in a rotationally-fixed manner to the spring element via a coupling, wherein the spring element is mounted via a spring element bearing on the coupling, which is designed in such a way that exclusively a translational deflection oriented in the tangential direction is applied to the spring element, and in that the bearing position mounting the spring element on the motor vehicle body side is designed as a fixed bearing.
12. The wheel suspension as claimed in claim 11, wherein the wheel suspension furthermore comprises a stabilizer aligned in the vehicle transverse direction and designed in the form of a hollow-cylindrical torsion spring bar, wherein the torsion spring arrangement is partially arranged coaxially in the interior of the hollow-cylindrical torsion spring bar.
13. The wheel suspension as claimed in claim 12, wherein in the region of the coaxially nested arrangement of the components, torsion spring bar and torsion spring arrangement, the components, torsion spring bar and torsion spring arrangement are enclosed by a housing fixedly mounted on the vehicle body side, wherein the torsion spring bar of the stabilizer is mounted on the housing and thus on the motor vehicle body side and wherein the hollow-cylindrical torsion bar of the torsion spring arrangement is fixedly mounted on the housing and the fixed bearing associated with the spring element is fixedly mounted on the housing and thus on the motor vehicle body side.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the figures:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) The torsion spring arrangement 10 comprises an outer torsion bar 12 viewed in the radial direction r, an inner torsion bar 14 arranged coaxially inside the outer torsion bar 12, and a spring element 16, which is designed in the form of a leaf spring and is arranged axially-parallel having radial distance to the two torsion bars 12, 14. In this case, as shown in
(9) The shared axis of the two torsion bars 12, 14, which is aligned in the axial direction a, is identified by R hereafter.
(10) The spring element 16 is connected to the inner torsion bar 14 via a coupling 24 and is mounted at its end facing away from the coupling 24 via a bearing position 26 on the motor vehicle body 20 and via a spring element bearing 28 on the coupling 24. The inner torsion bar 14 is fixedly connected to the outer torsion bar 12 at its end region facing away from the coupling 24, so that the torsion bars 12, 14 and the spring element 16 form a series circuit with respect to the spring action, i.e., the spring element 16 acts in series in relation to the two torsion bars 12, 14 with respect to the spring action.
(11) The spring element bearing 28 is designed here in such a way that a rotational movement of the coupling 24 resulting from a pivot of the inner torsion bar 14 around the axis R is converted into a translational movement engaging on the spring element 16 and oriented in the tangential direction. The translational deflection of the spring bar 16 extending perpendicularly to the figure sheet in
(12)
(13) The wheel suspension 100 comprises a stabilizer aligned in the vehicle transverse direction FQ and designed in the form of a hollow-cylindrical torsion bar 110, which—like the outer torsion bar 12 of the torsion spring arrangement 10—is connected in a rotationally-fixed manner to the output lever 22. The output lever 22 is fastenable in a known manner with a wheel guiding element, for example, a suspension arm.
(14) As
(15) Of the torsion bar spring arrangement 10, in the present case only the coupling 24, the spring element bearing 28, the spring element 16 designed in the form of a leaf spring, and the fixed bearing 26 are visible; the two torsion bars 12, 14 of the torsion bar spring arrangement 10, which are arranged coaxially in the interior of the torsion bar 110 of the stabilizer, are concealed by the housing 120 in the present case.
(16) As
(17) As is apparent in particular from
(18) To convert the rotational movement of the coupling 24 oriented around the axis R into a tangential direction t, i.e., in the present case into a translational movement of the second bearing part 34 aligned in the vehicle vertical direction FH and thus of the end of the spring element 16 mounted in the bearing 28, the coupling 24 is mounted via a pivotable mounting on the bearing element 30. For this purpose, the coupling 24 is pivotably mounted on the first bearing part 32 around a first pivot axis S.sub.1 arranged in parallel to the two torsion bars 12, 14 and thus in parallel to the axis R and the first bearing element 32 is pivotably arranged on the bearing element 30 around a second bearing axis S.sub.2 aligned in parallel to the first bearing axis S.sub.1.
(19) To avoid tensions, the spring element 16 is moreover mounted on the second bearing element 34 around a third pivot axis S.sub.3 aligned perpendicular to the two torsion bars 12, 14 and perpendicular to the tangential direction t, i.e., perpendicular to the vehicle vertical direction FQ.