Resin coating forming method for spline shaft and spline shaft
US-2015251399-A1 · Sep 10, 2015 · US
US11148706B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11148706-B2 |
| Application number | US-201716324377-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 10, 2017 |
| Priority date | Aug 11, 2016 |
| Publication date | Oct 19, 2021 |
| Grant date | Oct 19, 2021 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A steering shaft for a motor vehicle has an inner shaft, arranged in an outer shaft that is displaceable axially in the direction of an axis of rotation. The inner shaft includes axially running radial projections on its outer side. The outer shaft includes axially running grooves on its inner side, into which grooves the projections of the inner shaft engage in a positively locking manner in a direction of rotation and displaceably in an axial direction. With regard to fault-free operation during fluctuating temperatures, on the inner shaft, there is arranged a profiled sleeve with undulating cross-sectional profile, the inner surface of which lies against the flanks of the projections of the inner shaft and the outer surfaces of which lie against the flanks of the grooves of the outer shaft, wherein the profiled sleeve is connected to the inner shaft at one or more fastening points.
Opening claim text (preview).
The invention claimed is: 1. A steering shaft for a motor vehicle, comprising: an outer shaft; an inner shaft arranged in the outer shaft and configured so as to be displaceable axially along the direction of an axis of rotation; wherein the inner shaft includes axially running radial projections on an outer side thereof; wherein the outer shaft includes axially running grooves on an inner side thereof, into which grooves the radial projections of the inner shaft engage in a positively locking manner in a direction of rotation and displaceably in an axial direction; wherein the inner shaft includes a profiled sleeve having an inner circumferential surface that lays against flanks of the radial projections of the inner shaft and the outer circumferential surface of which lies against flanks of the grooves of the outer shaft; and wherein the profiled sleeve is connected to the inner shaft by ultrasonic fastening points distributed over a circumference of the profiled sleeve, wherein deformations of the profiled sleeve at the ultrasonic fastening points conform more closely to the outer side of the inner shaft than any other part of the profiled sleeve. 2. The steering shaft of claim 1 , wherein the projections of the inner shaft are equipped with a straight knurling on their radial outer side. 3. The steering shaft of claim 1 wherein each of the ultrasonic fastening points comprises a fixed connection between the profiled sleeve that is comprised of plastic and the inner shaft that is comprised of metal. 4. The steering shaft of claim 1 wherein radial outer sides of the axially running radial projections of the inner shaft include depressions into which the profiled sleeve is depressed. 5. The steering shaft of claim 1 wherein the axially running radial projections extend along an entire length of the inner shaft. 6. The steering shaft of claim 5 wherein the axially running radial projections of the inner shaft define an octagonal profile or a hexagonal profile. 7. The steering shaft of claim 1 wherein the deformations of the profiled sleeve at the ultrasonic fastening points conform to a microscopic surface structure of the outer side of the inner shaft. 8. A steering shaft for a motor vehicle, the steering shaft comprising: an outer shaft; an inner shaft arranged in the outer shaft and configured so as to be displaceable axially along the direction of an axis of rotation; wherein the inner shaft includes axially running radial projections on an outer side thereof; wherein the outer shaft includes axially running grooves on an inner side thereof, into which grooves the radial projections of the inner shaft engage in a positively locking manner in a direction of rotation and displaceably in an axial direction; wherein the inner shaft includes a profiled sleeve having an inner circumferential surface that lays against flanks of the radial projections of the inner shaft and the outer circumferential surface of which lies against flanks of the grooves of the outer shaft; and wherein the profiled sleeve is connected to the inner shaft by fastening points that are distributed over a circumference of the profiled sleeve and that prevent axial movement of the profiled sleeve relative to the inner shaft, wherein radial outer sides of the axially running radial projections of the inner shaft include depressions into which the profiled sleeve is depressed. 9. The steering shaft of claim 8 wherein each of the fastening points comprises a fixed connection between the profiled sleeve that is comprised of plastic and the inner shaft that is comprised of metal. 10. The steering shaft of claim 8 wherein the axially running radial projections extend along an entire length of the inner shaft. 11. A steering shaft for a motor vehicle, the steering shaft comprising: an outer shaft; an inner shaft arranged in the outer shaft and configured so as to be displaceable axially along the direction of an axis of rotation; wherein the inner shaft includes axially running radial projections on an outer side thereof; wherein the outer shaft includes axially running grooves on an inner side thereof, into which grooves the radial projections of the inner shaft engage in a positively locking manner in a direction of rotation and displaceably in an axial direction; wherein the inner shaft includes a profiled sleeve having an inner circumferential surface that lays against flanks of the radial projections of the inner shaft and the outer circumferential surface of which lies against flanks of the grooves of the outer shaft; and wherein the profiled sleeve is connected to the inner shaft by fastening points that are distributed over a circumference of the profiled sleeve at only a single axial location along the profiled sleeve and that prevent axial movement of the profiled sleeve relative to the inner shaft. 12. The steering shaft of claim 11 wherein each of the fastening points comprises a fixed connection between the profiled sleeve that is comprised of plastic and the inner shaft that is comprised of metal. 13. The steering shaft of claim 11 wherein radial outer sides of the axially running radial projections of the inner shaft include depressions into which the profiled sleeve is depressed. 14. The steering shaft of claim 11 wherein the axially running radial projections extend along an entire length of the inner shaft. 15. The steering shaft of claim 14 wherein the axially running radial projections of the inner shaft define an octagonal profile or a hexagonal profile.
Sliding-contact bearings · CPC title
telescopic (axially displaceable couplings F16D3/06) · CPC title
Mounting or assembling · CPC title
by welding · CPC title
with intermediate member provided with two pairs of outwardly-directed trunnions on intersecting axes · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.