TELESCOPIC STEERING SHAFT WITH A PULL-OUT SAFEGUARD
20190145456 · 2019-05-16
Assignee
Inventors
Cpc classification
Y10T403/32501
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16C3/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49929
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B62D1/20
PERFORMING OPERATIONS; TRANSPORTING
F16C2326/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T403/32475
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D3/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A steering shaft having an outer shaft and an inner shaft accommodated therein in a torque-locking, axially displaceable manner and an axial inner stop which projects radially outwards from an outer face of the inner shaft. When the inner shaft is pulled out of the outer shaft, the axial inner stop strikes against an axial outer stop projecting radially inwards from an inner face of the outer shaft, wherein the axial displacement of the inner shaft is limited in the pull-out direction. With regard to simple production of the outer stops with the least possible deformation of the entire cross section of the outer shaft, the outer stop is introduced by at least one forming process into an end portion of the outer shaft, wherein the axis of the direction of introduction in each case forms an angle of more than 20 with the radial direction of the outer shaft.
Claims
1.-15. (canceled)
16. A steering shaft for a motor vehicle, comprising: an outer shaft, and an inner shaft disposed in the outer shaft in a torque-locking and axially displaceable manner, the inner shaft having an axial inner stop that projects radially outwards from an outer face of the inner shaft and which, when the inner shaft is pulled out of the outer shaft, is positioned to strike against an axial outer stop that projects radially inwards from an inner face of the outer shaft to delimit the travel of the inner shaft in the outer shaft in a pull-out direction, wherein the outer stop is introduced by a forming process into an end portion of the outer shaft in a direction, wherein an axis of the direction of introduction forms an angle of more than 20 relative to a radial direction of the outer shaft.
17. The steering shaft of claim 16, including two inner stops and two outer stops, wherein the two inner stops are arranged on the inner shaft and the two outer stops are each positioned to strike a corresponding one of the inner stops, wherein the two outer stops are arranged on the outer shaft in the peripheral direction at a spacing of 180 from each other.
18. The steering shaft of claim 17, wherein the outer stops are introduced in each case by two forming processes at two adjacent positions in an outer periphery of the outer shaft, wherein the axes of the directions of introduction are located in a plane at right angles to a rotational axis of the outer shaft and intersect at a point arranged radially between the rotational axis and the outer periphery of the outer shaft.
19. The steering shaft of claim 16, wherein the outer stop is introduced into a front face of the outer shaft, wherein the axis of the direction of the introduction is located in a plane enclosing a rotational axis of the outer shaft.
20. The steering shaft of claim 16, wherein the outer stop is introduced by the forming process into an outer periphery of the outer shaft, wherein the axis of the direction of introduction is located in a plane enclosing a rotational axis of the outer shaft.
21. The steering shaft of claim 16, wherein the outer stop is introduced by the forming process into a region of the outer shaft enclosing a front face and an outer periphery thereof, wherein the axis of the direction of the introduction is located in a plane enclosing a rotational axis of the outer shaft.
22. The steering shaft of claim 17, wherein the outer stops are introduced in each case by a forming process into a respective end region of a longitudinal toothing on the inner face of the outer shaft, wherein the axis of the direction of the introduction is located in a plane arranged substantially tangentially to the outer face of the inner shaft.
23. A method for producing a pull-out safeguard of the steering shaft of claim 16, comprising: forming, on the inner shaft, the axial inner stop, inserting the inner shaft into the outer shaft, and forming with a first forming tool after said inserting step, on the outer shaft, the axial outer stop.
24. The method of claim 23, including forming two outer stops arranged in a peripheral direction at a spacing of 180 onto the outer shaft.
25. The method of claim 23, wherein two first forming tools act at two adjacent positions of an outer periphery of the outer shaft, wherein axes of two directions of introduction are located in a plane at right angles to a rotational axis of the outer shaft and intersect at a point arranged radially between the rotational axis and the outer periphery of the outer shaft.
26. The method of claim 23, wherein a second forming tool acts on a front face of the outer shaft, wherein the axis of the direction of introduction is located in a plane enclosing a rotational axis of the outer shaft.
27. The method of claim 26, wherein a third forming tool acts on an outer periphery of the outer shaft, wherein the axis of the direction of introduction is located in the plane enclosing the rotational axis of the outer shaft.
28. The method of claim 27, wherein a fourth forming tool acts on a region of the outer shaft enclosing the outer periphery and the front face of the outer shaft, wherein the axis of the direction of introduction is located in the plane enclosing the rotational axis of the outer shaft.
29. The method of claim 28, wherein a fifth forming tool acts on an end region of a longitudinal toothing on the inner face of the outer shaft, wherein the axis of the direction of introduction is located in a plane arranged substantially tangentially to the outer face of the inner shaft.
30. The method of claim 29, wherein two forming processes are carried out on two adjacent longitudinal toothings by two forming tools, wherein respective directions of introduction form an angle of more than 90 to one another.
Description
[0022] Exemplary embodiments of the invention are described in more detail hereinafter with reference to the drawings. In detail:
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[0039] A steering device for a motor vehicle is shown in
[0040] In order to ensure a longitudinal adjustment of the steering wheel 4 in the direction of the rotational axis 15 of the steering shaft 1, the steering shaft 1 has a telescopable portion 2, 3 which is shown in
[0041] The inner shaft part 3 comprises on the outer surface a partial coating, also called overmolding, which is made of a plastic material and which cooperates with the longitudinal toothing 13 of the outer shaft part 2 and minimizes rotational play between the outer shaft part 2 and the inner shaft part 3. Alternatively, instead of the coating, a profile sleeve attached fixedly to the inner shaft 3 may also be arranged thereon. It is also conceivable and possible that the partial coating is configured on the inner surface of the outer shaft part 2 or the profile sleeve is received in the outer shaft 2.
[0042] As is identified most clearly in
[0043] The present invention relates to advantageous embodiments of the respective outer stops 20 to 27, 43, 44 and methods for the production thereof. It is common to all embodiments that the outer stops 20 to 27, 43, 44 are introduced by a forming process into an end portion 29 of the outer shaft part 2, wherein the respective axis of the direction of introduction 30 in each case forms an angle 32 of more than 20 with the radial direction 31 of the outer shaft part 2. Moreover, it is common to the exemplary embodiments that in each case two outer stops 20 to 27, 43, 44 are arranged on the outer shaft part 2 in the peripheral direction 33 at a spacing of 180. This is illustrated by way of example in
[0044] If the inner shaft part 3 is pulled out of the outer shaft part 2 in the pull-out direction 28, the inner stops 17, 18 of the inner shaft part 3 strike against the outer stops 20 to 27, 43, 44 of the outer shaft part 2, whereby the pull-out movement is limited and stopped. As a result, the inner shaft part 3 is prevented from being inadvertently pulled out entirely from the outer shaft part 2.
[0045] In a first exemplary embodiment of the invention which is shown in
[0046] In the second exemplary embodiment which is shown in
[0047] In the third exemplary embodiment shown in
[0048] In a fourth exemplary embodiment of the invention for producing the outer stops 26, 27, a fourth forming tool 40 acts on a in the region of the outer shaft part 2 which encloses both the outer periphery 36 and the front face 42 of the outer shaft part 2. In this case, the axis of the direction of introduction 30 is again located in a plane which encloses the rotational axis 15 of the outer shaft part 2 and which corresponds in
[0049] In a fifth exemplary embodiment of the invention, as is shown in
[0050] Differently shaped outer stops 20 to 27, 43, 44 are produced in all of the exemplary embodiments, but it is common to all of the exemplary embodiments that the type of production thereof is not able to lead to significant deformation of the entire cross section of the outer shaft part 2, namely a reshaping of the circular cross section into an oval cross section. As a result, it is prevented that the inner shaft part 3 becomes jammed in the deformed outer shaft part 2 and that greater forces are necessary for displacement in the direction of the rotational axis 15. The methods according to the invention permit inexpensive production of the outer stops 20 to 27, 43, 44 without comprising the drawbacks of the prior art.
LIST OF REFERENCE NUMERALS
[0051] 1 Steering shaft
[0052] 2 Outer shaft part
[0053] 3 Inner shaft part
[0054] 4 Steering wheel
[0055] 5 Rotary joint
[0056] 7 Rotary joint
[0057] 8 Steering gear
[0058] 9 Pinion
[0059] 10 Toothed rod
[0060] 11 Track rods
[0061] 12 Vehicle wheel
[0062] 13 Longitudinal toothing
[0063] 14 Longitudinal toothing
[0064] 15 Rotational axis
[0065] 16 Outer face
[0066] 17 Inner stop
[0067] 18 Inner stop
[0068] 19 Inner face
[0069] 20 Outer stop
[0070] 21 Outer stop
[0071] 22 Outer stop
[0072] 23 Outer stop
[0073] 24 Outer stop
[0074] 25 Outer stop
[0075] 26 Outer stop
[0076] 27 Outer stop
[0077] 28 Pull-out direction
[0078] 29 End portion
[0079] 30 Direction of introduction
[0080] 31 Radial direction
[0081] 32 Angle
[0082] 33 Peripheral direction
[0083] 34 Position
[0084] 35 Position
[0085] 36 Outer periphery
[0086] 37 Forming tool
[0087] 38 Forming tool
[0088] 39 Forming tool
[0089] 40 Forming tool
[0090] 41 Point
[0091] 42 Front face
[0092] 43 Outer stop
[0093] 44 Outer stop
[0094] 45 Forming tool