The present invention relates to a steering system and a vehicle.
In the prior art, rack-and-pinion arrangements and ball screw drives are known as part of a steering system.
The term “toothed rack” is synonymously understood to be a steering rod. A toothed rack is axially displaceable, wherein it can turn wheels of vehicles which are articulated via tie rods.
A steering with a ball screw drive has the disadvantage that, in contrast to steering with a rack-and-pinion arrangement, there is no inherent torsion prevention of the toothed rack. A torsion prevention is necessary for the function of the ball screw drive. If with a steering, for example, a steer-by-wire steering system, there is only a ball screw drive for applying the steering torque, an additional torsion prevention member therefore has to be arranged.
In a conventional steering system having a worm gear mechanism using a rack-and-pinion arrangement, there is automatically produced a torsion prevention of the relevant toothed rack since generally a pressure piece which is arranged opposite the pinion ensures that the toothed rack is pressed with its tooth arrangement against the tooth arrangement of the pinion and consequently there is a lack of play with respect to torsion of the toothed rack. Even without a pressure piece, torsion is only provided in the context of the flank play between the tooth arrangement partners, pinion and toothed rack. With a steer-by-wire steering system with a ball screw drive, such torsion prevention is not provided since in this instance the steering gear in the form of a rack-and-pinion tooth arrangement is omitted.
An objective is therefore to provide a steering system for a “steer-by-wire” concept with a ball screw drive which enables torsion prevention.
As a first embodiment of the invention, a steering system for steering a wheel of a vehicle is provided, comprising: a tie rod for redirecting the wheel, a toothed rack which, as a result of an axial displacement, leads to control of the tie rod, and a housing, wherein the toothed rack is arranged at least partially inside the housing, wherein the toothed rack has a convex and/or concave cross-section portion, wherein the complementary geometry which is fixed to the housing comprises a complementary concave and/or convex formation, whereby a positive-locking connection is produced in order to produce a torsion prevention.
As a result of corresponding forms of the toothed rack with respect to the housing thereof, for example, in a clover-leaf-like profile, a torsion prevention of the toothed rack within the housing can be ensured.
As a second embodiment of the invention, a vehicle is provided, wherein the vehicle has a steering system according to any one of claims 1 to 9.
Exemplary embodiments are described in the dependent claims.
According to an exemplary embodiment of the invention, a steering system is provided, wherein an intermediate element is arranged between the housing and toothed rack in order to ensure a low-friction and low-wear sliding friction, fitting precision and a lack of play or play freedom.
According to another embodiment of the present invention, a steering system is provided, wherein an insertion bush which is connected to the housing is provided between the housing and intermediate element.
In another embodiment according to the invention, a steering system is provided, wherein the intermediate element is constructed integrally with the housing or integrally with the insertion bush or integrally with the toothed rack.
As a result of the integral nature, a simplified assembly of the steering is provided.
According to another embodiment of the present invention, a steering system is provided, wherein the intermediate element is injected or placed between the housing and toothed rack.
A simple assembly method is thereby produced.
According to an exemplary embodiment of the invention, a steering system is provided, wherein the intermediate element has in a radial and/or in an axial direction a wave form, in particular a sinusoidal wave form.
As a result of a sinusoidal configuration of the intermediate element, a simplified production of the intermediate element is possible.
In another embodiment according to the invention, a steering system is provided, wherein the steering system is suitable for highly autonomous driving.
According to another embodiment of the present invention, a steering system is provided, wherein the steering system is suitable for steer-by-wire and/or wherein the steering system is suitable as a rear-axle steering system.
In another embodiment according to the invention, a steering system is provided, wherein a metal protuberance of the housing or the toothed rack protrudes into a suitable metal recess of the toothed rack or the housing.
As a result of a metal projection which protrudes into a complementary recess, an emergency torsion prevention can be produced.
It can be considered to be a notion of the invention to provide a steering system in which the toothed rack has a contour such that, as a result of a positive-locking connection to the cover of the toothed rack, that is to say, the housing thereof, torsion of the toothed rack can be excluded.
The individual features can of course also be combined with each other, whereby advantageous effects which extend beyond the sum of the individual effects may also be produced in some cases.
Further details and advantages of the invention will become clear with reference to the embodiments illustrated in the drawings, in which:
The speed separation or the sliding movement takes place in this instance between the housing 3 or the insertion bush 10 and the intermediate element 7.
In a conventional steering system having a mechanical through-drive, as a result of the rack-and-pinion connection the function of the torsion prevention of the toothed rack is automatically also provided currently. With alternative steering systems, for example, with a steer-by-wire steering based on the EPSapa, without a mechanical through-drive, there is no rack-and-pinion connection. Since the function of the torsion prevention of the toothed rack is indispensable for the functionality of the ball screw drive, however, this has to be produced in another manner. According to the invention the torsion prevention of the toothed rack is enabled by means of a positive-locking connection with a corresponding counter-contour of the housing of the toothed rack.
It should be noted that the term “comprise” does not exclude other elements or method steps, and the term “a” or “an” does not exclude a plurality of elements and steps.
The reference numerals used serve only to increase the comprehensibility and should in no way be considered to be limiting, wherein the protective scope of the invention is set out by the claims.
1 Groove
2 Groove
3 Housing
4 Toothed rack, axially displaceable
5 Intermediate element
6 Intermediate element
7 Intermediate element
8 Contact location with housing
9 Contact location with toothed rack
10 Insertion bush
11 Tie rod
12 Torque sensor
13 Control device
14 Pinion
15 Belt
16 Ball screw drive
17 Servo motor
18 Steering column
Number | Date | Country | Kind |
---|---|---|---|
10 2018 214 039.1 | Aug 2018 | DE | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2019/069612 | 7/22/2019 | WO | 00 |