Torsion spring bar system for a wheel suspension of a motor vehicle
09694645 ยท 2017-07-04
Assignee
Inventors
Cpc classification
B60G2202/32
PERFORMING OPERATIONS; TRANSPORTING
B60G17/025
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/82
PERFORMING OPERATIONS; TRANSPORTING
B60G11/60
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/125
PERFORMING OPERATIONS; TRANSPORTING
B60G2202/134
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/122
PERFORMING OPERATIONS; TRANSPORTING
B60G21/0555
PERFORMING OPERATIONS; TRANSPORTING
B60G21/05
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60G21/05
PERFORMING OPERATIONS; TRANSPORTING
B60G17/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A torsion spring bar system for a wheel suspension of a motor vehicle includes on each vehicle side a torsion spring bar which is oriented transversely to the vehicle longitudinal center and acts on each wheel guide element of the wheel suspension with variable pretension via an output lever positioned outwards with respect to the vehicle longitudinal center. The torsion spring bar is acted upon by an actuator with a torsional moment. The torsion spring bars on both vehicle sides are coupled to one another at their axially adjacent ends in the vehicle longitudinal center via at least one additional torsion spring element.
Claims
1. A torsion spring bar system for a wheel suspension of a motor vehicle, comprising: torsion spring bars oriented transversely to a vehicle longitudinal center on both vehicles sides, respectively, each of said torsion spring bars acting on a wheel guide element of the wheel suspension with variable pretension via an output lever positioned outwards with respect to the vehicle longitudinal center; an actuator configured to act on the torsion spring bar with a torsional moment; at least one torsion spring element configured to couple the torsion spring bars to one another at axially adjacent ends in the vehicle longitudinal center; and a flexible drive having an output gear in hollow shaft design, each of said torsion spring bars including a solid bar and a tubular bar connected to the solid bar, said actuator including an electric motor and a gearing with a high gear ratio to reduce stress on the flexible drive, said flexible drive being a chain or a toothed belt, and said electric motor being arranged in axis-parallel relation to the torsion spring bar and in driving relation to the tubular bar via the flexible drive with the output gear.
2. The torsion spring bar system of claim 1, wherein the at least one torsion spring element has a progressive characteristic with a torsional moment increasingly acting on the torsion spring element.
3. The torsion spring bar system of claim 1, wherein the at least one torsion spring element has an elastomer body which is connected with the adjacent ends of the torsion spring bars, said elastomer body having a rotation-symmetric outer circumference.
4. The torsion spring bar system of claim 1, wherein the flexible drive is in driving relation to the gearing which is configured in coaxial relation to the torsion spring bars and configured in hollow shaft design and which is in driving relation to the torsion spring bars.
5. The torsion spring bar system of claim 1, wherein the electric motor and the gearing of the actuator are configured in hollow shaft design and in coaxial driving relation to the torsion spring bars.
6. The torsion spring bar system of claim 1, wherein each of said torsion spring bars is made of the at least of two parts, one of the parts being a tubular bar extending towards the vehicle longitudinally center, and the other part being a radially inner solid bar, said solid bar being attached to the actuator and extending in backwards direction through the tubular bar for indirect or direct connection to the output lever.
7. The torsion spring bar system of claim 1, wherein the at least one torsion spring element includes two bearing plates, and an elastomer body which is vulcanized in place between the two bearing plates, said two bearing plates having catches which interact with a plug toothing of the torsion spring bars.
8. The torsion spring bar system of claim 7, wherein the catches are constructed in the form of internally toothed bearing sleeves which interact with the plug toothings of the torsion spring bars, respectively.
Description
(1) Several exemplary embodiments of the invention become readily apparent hereinafter with reference to the accompanying schematic drawing. It is shown in:
(2)
(3)
(4)
(5)
(6)
(7)
(8) Each of the torsion spring bars 14 (
(9) Each outwardly positioned output lever 16 is pivotally connected to a wheel guide element (not shown) of the left-hand and right-hand wheel suspension of the motor vehicle. The wheel guide element may, for example, be a control arm or a wheel carrier, to which the output lever 16 is articulated with interposition of a coupling rod.
(10) The actuator 12 secured to the vehicle body or a subframe includes an electric motor 26 arranged in axis-parallel relation to the torsion spring 14, a gearing 28 with high gear ratio (for example harmonic drive gear), and a flexible drive 30 which is in driving relation to the tubular bar 22, that is at its end opposite to the plug toothing 24.
(11) The flexible drive 30, preferably a toothed belt drive, is in driving relation to a pulley 30a (
(12) The tubular bar 22 and the solid bar 20 routed there through are rotatably mounted in a vehicle-fixed housing (not shown) via only indicated bearings 34 (roller or slide bearings) in the area of the output lever 16 and the flexible drive 30; the housing can form for example a unitary structure with the actuator 12.
(13) As shown in particular in
(14) The torsion spring element 36 is, preferably, formed by an elastomer body with rotation-symmetric outer circumference and constructively designed such as to have a progressively increasing spring rate. This can, for example, be realized by not shown recesses and webs in the elastomer body, which transitions at initially low spring rate and flat force and torsion angle characteristic line to a characteristic line with significantly ascending gradient.
(15)
(16) Secured to the bearing plates 36b are bearing sleeves 36c which serve as catches and have a plug toothing 24 that is compatible with the solid bars 20 of the torsion spring bars 14 and which are formfittingly plugged in the circumferential direction upon a portion of the solid bars 20 that extends beyond the tubular bars 22.
(17) Via the torsion spring element 36 of
(18) Optionally, stops may be provided on the bearing plates 36b and act in circumferential direction to form a defined limitation of the torsion angle for the torsion spring element 36 or the elastomer body 36a.
(19)
(20) As an alternative to the preceding configuration, the gearing 28 with high gear ratio is configured in hollow shaft design and positioned, like the pulley 30a of the flexible drive 30, also about the tubular bar 22.
(21) As a result, the electric motor 26 is in driving relation via the toothed belt of the flexible drive 30 with the pulley 30a which in turn is in driving relation to the axially adjacent gearing 28, whose output element then correspondingly actuates the tubular bar 22 via the plug toothing 32. The gearing 28 may, for example, be a harmonic gear drive or a cycloidal gear drive of known design.
(22) According to a further variant of the torsion spring bar system 10 (not shown), the electric motor 26 may also be disposed in hollow shaft design about the tubular bar 22, wherein in this case the flexible drive 30 is eliminated and the hollow output shaft of the electric motor 26 would act on the gearing 28.
(23) The invention is not limited to the exemplary embodiments described. The torsion spring bars 14 may also be formed from two tubular bars 22, connected in series, and a solid bar 20 of spring steel, with the torsion spring element 36 coupling both torsion spring bars 14 accordingly. Optionally, the torsion spring element 36 may also be formed by a spring element having a same function and provided with helical compression springs oriented in circumferential direction, similar to a clutch driving disk in motor vehicles.