System, method and apparatus for a telescopic lead screw for a steering column
11358627 · 2022-06-14
Assignee
Inventors
Cpc classification
F16H2025/2062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D1/181
PERFORMING OPERATIONS; TRANSPORTING
F16H25/2056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D1/183
PERFORMING OPERATIONS; TRANSPORTING
F16H2025/2084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B62D1/185
PERFORMING OPERATIONS; TRANSPORTING
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A steering column assembly includes a jacket. The assembly also includes a plurality of cylindrical lead screws threadably coupled to each other, the plurality of lead screws rotatable relative to each other and translatable relative to each other. The assembly further includes a nut threadably coupled to one of the plurality of lead screws and operatively coupled to the jacket to axially move the jacket.
Claims
1. A steering column assembly, comprising: a jacket; a first lead screw rotatably driven by an actuator; a second lead screw threadably coupled to the first lead screw and driven by the same actuator as the first lead screw via rotation of the first lead screw; and a nut threadably coupled to the second lead screw and operatively coupled to the jacket to axially move the jacket.
2. The steering column assembly of claim 1, wherein the second lead screw includes an inner threading and an outer threading, the inner threading threadably coupled to an outer surface of the first lead screw.
3. The steering column assembly of claim 2, wherein the outer threading is threadably coupled to an inner surface of the nut.
4. The steering column assembly of claim 1, wherein the actuator is an electric motor.
5. The steering column assembly of claim 4, wherein the electric motor comprises an output shaft that is operatively coupled to a gearbox that is operatively coupled to the first screw and is configured to rotate the first lead screw.
6. The steering column assembly of claim 1, wherein the nut is operatively coupled to the jacket with a telescope drive bracket.
7. A steering column assembly comprising: a jacket; a plurality of cylindrical lead screws threadably coupled to each other, the plurality of lead screws rotatable relative to each other and translatable relative to each other and translated by a common actuator; and a nut threadably coupled to one of the plurality of lead screws and operatively coupled to the jacket to axially move the jacket.
8. The steering column assembly of claim 7, wherein the plurality of lead screws includes a driven lead screw and one or more additional lead screws.
9. The steering column assembly of claim 7, wherein the common actuator is an electric motor.
10. The steering column assembly of claim 9, wherein the electric motor comprises an output shaft that is operatively coupled to a gearbox that is operatively coupled to the driven lead screw and is configured to rotate the driven lead screw.
11. The steering column assembly of claim 7, wherein the nut is operatively coupled to the jacket with a telescope drive bracket.
12. A steering column assembly comprising: a jacket; an electric actuator; a first lead screw rotatably driven by the electric actuator, the first lead screw having an outer threading; a second lead screw having an inner threading engaged with the outer threading of the first lead screw, the second lead screw rotatable relative to the first lead screw and translatable relative to the first lead screw, wherein the second lead screw is driven by the same electric actuator as the first lead screw via rotation of the first lead screw; and a nut having an inner threading engaged with an outer threading of the second lead screw, the nut fixed to a telescope drive bracket to prevent rotation of the nut, wherein rotation of the second lead screw axially translates the nut and the telescope drive bracket to axially translate the jacket that the telescope drive bracket is operatively coupled to.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) Referring now to the Figures, where the various embodiments are shown and described herein, without limiting same,
(7) Referring now to
(8) The lead screw assembly includes an electric motor 14 that drives a gearbox 16. The gearbox 16 is operatively coupled to a first lead screw 18. The first lead screw 18 is rotatably driven by the electric motor 14 via connection through the gearbox 16. During rotation, the first lead screw 18 is maintained in a constant axial position.
(9) A second lead screw 20 includes an inner threading and an outer threading 22. The inner threading of the second lead screw 20 is engaged with an outer threading 24 of the first lead screw 18. Unlike the first lead screw 18, the second lead screw 20 is free to translate axially along the first lead screw 18 and free to rotate. In this way, while the element is referred to as a lead screw herein, the second lead screw 20 may also be considered a floating nut.
(10) A nut 26 includes an internal threading that is engaged with the outer threading 22 of the second lead screw 20 in a manner that allows the nut 26 to translate axially along the second lead screw 20 during rotation of the second lead screw 20. This is due to constraint of potential rotational motion of the nut 26. The constraint is accomplished with connection of the nut 26 to a telescope drive bracket 28 that is operatively coupled to the jacket assembly 12. In particular, the telescope drive bracket 28 is coupled to the portion of the jacket assembly 12 that is configured to telescope and/or translate for adjustment of the steering column position.
(11) Referring now to
(12) During rotation of the second lead screw 20, the nut 26 is axially translated along the second lead screw 20 between a third end stop and a fourth end stop, with the third end stop defining a first axial travel stop for the nut 26 and the fourth end stop defining a second axial travel stop for the nut 26.
(13) As shown,
(14) The telescopic lead screw assembly 10 provides a greater amount of axial travel and stow capacity when compared to single lead screw and nut designs. For example, embodiments can provide axial travel that is greater than 100 mm, greater than 150 mm, greater than 200 mm, or even greater than 250 mm (e.g., 260 mm). Such versions of a telescopic lead screw assembly can package between the rear of dash and the front of dash for almost any passenger vehicle.
(15) The embodiments disclosed herein significantly increase the amount of stow capability that can be achieved for any vehicle compared to a conventional telescoping mechanism, while avoiding drawbacks associated with other stowing assemblies.
(16) The disclosed embodiments can utilize the available space in an environment in a more efficient way. For example, in steer-by-wire applications, this design can improve performance. Although applications having a large hand wheel actuator requiring additional space can restrict the effective use of the space for stow or storage of the steering column assembly (and hand wheel actuator), the embodiments disclosed herein can overcome such limitations. The steering column assembly can telescope different portions at the same time, or sequentially, during the stowing of the steering column assembly.
(17) Any feature, element, component or advantage of any one embodiment can be used on any of the other embodiments.
(18) While the various embodiments have been described in detail in connection with only a limited number of examples, it should be readily understood that they are not limited to such disclosed versions. Rather, the embodiments can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of this disclosure. Additionally, while various embodiments have been described, it is to be understood that aspects may include only some of the described features and components. Accordingly, the embodiments are not to be seen as limited by the foregoing description.