Axial rotation damping mechanism

US11753280B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11753280-B2
Application numberUS-202016937212-A
CountryUS
Kind codeB2
Filing dateJul 23, 2020
Priority dateNov 8, 2019
Publication dateSep 12, 2023
Grant dateSep 12, 2023

How to read this patent

A practical reading order for non-experts. Skip the full description unless you need deep technical detail.

  1. Title

    What the patent document calls the invention.

  2. Abstract

    A short plain-language summary of the technical disclosure.

  3. Assignees and inventors

    Who owns or filed the patent and who is credited as inventor.

  4. Key dates

    Filing, priority, publication, and grant dates set the timeline.

  5. First independent claim

    The legal scope of protection — read this for what is actually claimed.

  6. CPC / IPC classifications

    Technology tags used to group this patent with similar filings.

  7. Citations and related patents

    Prior art links and similar publications in this corpus.

Abstract

Official abstract text for this publication.

A damping mechanism may comprise a housing, a shaft, a spring arm assembly including a first spring arm, wherein the spring arm assembly is coupled to the shaft and configured to rotate in response to a rotation of the shaft, wherein the first spring arm extends relatively radially outward of the spring arm assembly toward the housing in response to the rotation of the shaft, and wherein the rotation of the shaft is damped in response to extending the first spring arm.

First claim

Opening claim text (preview).

What is claimed is: 1. A rotational damping mechanism, comprising: a housing; a rotating member; a spring arm assembly including a first spring arm, wherein the spring arm assembly is coupled to the rotating member and configured to rotate in response to a rotation of the rotating member, wherein the first spring arm extends radially outward of the spring arm assembly toward the housing in response to the rotation of the rotating member, and wherein the rotation of the rotating member is damped in response to extending the first spring arm due to a friction brake force caused by extending the first spring arm and an eddy current brake force caused by extending the first spring arm. 2. The damping mechanism of claim 1 , wherein the rotation comprises a clockwise rotation and an anti-clockwise rotation, wherein the spring arm assembly comprises a second spring arm, wherein the first spring arm extends in response to the clockwise rotation of the rotating member, wherein the second spring arm extends radially outward of the spring arm assembly toward the housing in response to the anti-clockwise rotation of the rotating member, and wherein the clockwise rotation is damped in response to extending the first spring arm and the anti-clockwise rotation is damped in response to extending the second spring arm. 3. The damping mechanism of claim 1 , further comprising a first friction surface disposed within the housing. 4. The damping mechanism of claim 3 , wherein the first spring arm comprises a second friction surface, wherein the second friction surface contacts the first friction surface in response to the rotation of the rotating member and generates the friction brake force, wherein the friction brake force is proportional to a rotation rate of the rotating member. 5. The damping mechanism of claim 1 , further comprising: a conductive non-magnetic member disposed within the housing, and a magnetic member disposed within at least the first spring arm and configured to rotate relative to the conductive non-magnetic member in response to the rotation of the rotating member, wherein the eddy current brake force is generated between the conductive non-magnetic member and the magnetic member in response to the rotation of the rotating member, and wherein the rotation of the rotating member is damped in response to the eddy current brake force. 6. The damping mechanism of claim 5 , wherein the conductive non-magnetic member comprises at least one of an annular ring or a disk. 7. The damping mechanism of claim 5 , wherein the first spring arm comprises the magnetic member. 8. A hook assembly for a hoist system, comprising: a housing; a bearing disposed within the housing; a hook coupled to the bearing and configured to rotate axially about the bearing; a spring arm assembly including a first spring arm, wherein the spring arm assembly is coupled to the hook and configured to rotate in response to a rotation of the hook, wherein the first spring arm extends radially outward of the spring arm assembly toward the housing in response to the rotation of the hook, and wherein the rotation of the hook is damped in response to extending the first spring arm. 9. The hook assembly of claim 8 , wherein the rotation comprises a clockwise rotation and an anti-clockwise rotation, wherein the spring arm assembly comprises a second spring arm, wherein the first spring arm extends in response to the clockwise rotation of the hook, wherein the second spring arm extends radially outward of the spring arm assembly toward the housing in response to the anti-clockwise rotation of the hook, and wherein the clockwise rotation is damped in response to extending the first spring arm and the anti-clockwise rotation is damped in response to extending the second spring arm. 10. The hook assembly of claim 8 , further comprising a first friction surface disposed within the housing. 11. The hook assembly of claim 10 , wherein the first spring arm comprises a second friction surface, wherein the second friction surface contacts the first friction surface in response to the rotation of the hook and generates a friction brake force, wherein the friction brake force is proportional to a rotation rate of the hook. 12. The hook assembly of claim 8 , further comprising: a conductive non-magnetic member disposed within the housing, and a magnetic member disposed within the housing and configured to rotate relative to the conductive non-magnetic member in response to the rotation of the hook, wherein an eddy current brake force is generated between the conductive non-magnetic member and the magnetic member in response to the rotation of the hook, and wherein the rotation of the hook is damped in response to the eddy current brake force. 13. The hook assembly of claim 12 , wherein the conductive non-magnetic member comprises at least one of an annular ring or a disk. 14. The hook assembly of claim 12 , wherein the first spring arm comprises the magnetic member. 15. A aircraft comprising: an airframe; a hoist system coupled to the airframe; and a hook assembly coupled to the hoist system comprising: a housing; a bearing disposed within the housing; a hook coupled to the bearing and configured to rotate axially about the bearing; a spring arm assembly including a first spring arm, wherein the spring arm assembly is coupled to the hook and configured to rotate in response to a rotation of the hook, wherein the first spring arm extends radially outward of the spring arm assembly toward the housing in response to the rotation of the hook, and wherein the rotation of the hook is damped in response to extending the first spring arm. 16. The aircraft of claim 15 , wherein the rotation comprises a clockwise rotation and an anti-clockwise rotation, wherein the spring arm assembly comprises a second spring arm, wherein the first spring arm extends in response to the clockwise rotation of the hook, wherein the second spring arm extends radially outward of the spring arm assembly toward the housing in response to the anti-clockwise rotation of the hook, wherein the clockwise rotation is damped in response to extending the first spring arm and the anti-clockwise rotation is damped in response to extending the second spring arm. 17. The aircraft of claim 15 , further comprising a first friction surface disposed within the housing. 18. The aircraft of claim 17 , wherein the first spring arm comprises a second friction surface, wherein the second friction surface contacts the first friction surface in response to the rotation of the hook and generates a friction brake force, wherein the friction brake force is proportional to a rotation rate of the hook. 19. The aircraft of claim 15 , further comprising: a conductive non-magnetic member disposed within the housing, and a magnetic member disposed within the housing and configured to rotate relative to the conductive non-magnetic member in response to the rotation of the hook, wherein an eddy current brake force is generated between the conductive non-magnetic member and the magnetic member in response to the rotation of the hook, and wherein the rotation of the hook is damped in response to the eddy current brake force. 20. The aircraft of claim 19 , wherein the conductive non-magnetic member comprises at least one of an annular ring or a disk.

Assignees

Inventors

Classifications

  • B66C13/04Primary

    Auxiliary devices for controlling movements of suspended loads, or preventing cable slack · CPC title

  • H02K49/043Primary

    with a radial airgap · CPC title

  • in a direction perpendicular or inclined to the axis of rotation {(F16F7/023 takes precedence)} · CPC title

  • Taking-up articles from earth's surface · CPC title

  • by use of eddy or induced-current damping (dynamo-electric brakes of the eddy-current type H02K49/04) · CPC title

Patent family

Related publications grouped by family.

External sources

Frequently asked questions

Answers are generated from the same data shown on this page.

What does patent US11753280B2 cover?
A damping mechanism may comprise a housing, a shaft, a spring arm assembly including a first spring arm, wherein the spring arm assembly is coupled to the shaft and configured to rotate in response to a rotation of the shaft, wherein the first spring arm extends relatively radially outward of the spring arm assembly toward the housing in response to the rotation of the shaft, and wherein the ro…
Who is the assignee on this patent?
Goodrich Corp
What technology area does this patent fall under?
Primary CPC classification B66C13/04. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Sep 12 2023 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).