IP Library Granted Patent US 10,215,251
Granted Patent B2
US 10,215,251 · App. 15/793,064 · Granted Feb 26, 2019

Interference arrangement for spring

Inventors: Joel McCoy (Maumee, OH); Tyler Schroeder (Maumee, OH); Adrian Vine (Ann Arbor, MI)
Assignee: Barnes Group Inc.
F16F13/005F16F7/09F16F2224/02
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Quick Facts
Patent No.
US 10,215,251
App. No.
15/793,064
Granted
Feb 26, 2019
Kind
B2
Abstract

A spring system that includes a compressible material that is used to control the speed of the rod movement.

Claims (36)

1. A spring system that includes a compressible material used to affect the operation of the spring system between fully extended and fully retracted positions, said spring system comprising:

a housing body having a front portion with a front end, a rear portion with a rear end, and an internal cavity;

a rod that is at least partially positioned in said internal cavity and at least partially extending outwardly from said front end of said housing body, said rod movable between said fully extended and fully retracted positions, said rod having a front end and a back end;

a first compressible sleeve formed of a compressible and/or deformable material configured to affect movement of said rod within said internal cavity when said first compressible sleeve is exposed to a compression force, said first compression sleeve configured to move relative to said rod along only a portion of a longitudinal length of said rod as said rod moves from said fully extended position to said fully retracted position and from said fully retracted position to said fully extended position such that said compressible sleeve moves to different positions along said longitudinal length of said rod;

a first stop, said first stop a) connected to said rod and spaced from said front end and said back end of said rod, or b) fixed in position in said internal cavity of said housing body; said first compressible sleeve positioned between i) said first stop and said back end of said rod, or ii) said first stop and said front end of said housing; said first compressible sleeve having a width such that said first compressible sleeve does not simultaneously contact I) said first stop and said back end of said rod, or II) said first stop and said front end of said housing such that at least one end of said first compressible sleeve is caused to disengage from any structure in said housing body when said rod moves from said fully extended position to said fully retracted position and from said fully retracted position to said fully extended position; said first stop configured to limit movement of said first compressible sleeve as said rod moves between said fully extended and fully retracted positions, said first compression sleeve movably positioned on said rod so as to engage and to disengage from said first stop as said rod moves between said fully extended to said fully retracted position and said fully retracted position; and,

a compression structure configured to cause said first compressible sleeve to compress and/or deform when said rod moves between said fully extended and fully retracted positions, said compression structure positioned on a portion of said rod, on an inner surface of said internal cavity, or combinations thereof.

2. The spring system as defined in claim 1 , wherein said first compressible sleeve is at least partially positioned about said rod, said first compressible sleeve is caused to compress and/or deform when said rod moves between said fully extended and fully retracted positions when a) said first compressible sleeve moves along a longitudinal length of a portion of said rod that has a variable cross-sectional area, variable cross-sectional shape, or combinations thereof, b) said first compressible sleeve contacts a portion of said inner surface of said interior cavity that has a variable cross-sectional area, variable cross-sectional shape, or combinations thereof, or c) a and b.

3. The spring system as defined in claim 1 , wherein said compression structure includes a portion of said rod that is positioned between said first stop and said back end of said rod and which compression structure has a variable cross-sectional area, a variable cross-sectional shape, or combinations thereof, said compression structure is configured to contact said first compressible sleeve when said rod moves between said fully extended and fully retracted positions.

4. The spring system as defined in claim 1 , wherein said compression structure is positioned on a portion of said interior cavity and which compression structure has a variable cross-sectional area, a variable cross-sectional shape, or combinations thereof, said compression structure is configured to contact said first compressible sleeve when said rod moves between said fully extended and fully retracted positions.

5. The spring system as defined in claim 3 , wherein said compression structure is positioned on a portion of said interior cavity and which compression structure has a variable cross-sectional area, a variable cross-sectional shape, or combinations thereof, said compression structure is configured to contact said first compressible sleeve when said rod moves between said fully extended and fully retracted positions.

6. The spring system as defined in claim 1 , including a front bushing that is positioned at least partially in said internal cavity and located at said front portion of said housing body, said front bushing includes an opening to enable at least a portion of said rod to move through said opening as said rod moves between fully extended and fully retracted positions, said first compression sleeve configured to engage said first stop while being spaced from said front bushing, said first compression sleeve configured to engage said front bushing while being spaced from said first stop.

7. The spring system as defined in claim 4 , including a front bushing that is positioned at least partially in said internal cavity and located at said front portion of said housing body, said front bushing includes an opening to enable at least a portion of said rod to move through said opening as said rod moves between fully extended and fully retracted positions, said first compression sleeve configured to engage said first stop while being spaced from said front bushing, said first compression sleeve configured to engage said front bushing while being spaced from said first stop.

8. The spring system as defined in claim 5 , including a front bushing that is positioned at least partially in said internal cavity and located at said front portion of said housing body, said front bushing includes an opening to enable at least a portion of said rod to move through said opening as said rod moves between fully extended and fully retracted positions, said first compression sleeve configured to engage said first stop while being spaced from said front bushing, said first compression sleeve configured to engage said front bushing while being spaced from said first stop.

9. The spring system as defined in claim 1 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

10. The spring system as defined in claim 2 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

11. The spring system as defined in claim 3 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

12. The spring system as defined in claim 4 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

13. A method for affecting the compression of the spring system between fully extended and fully retracted positions, said method comprising the steps of:

a. providing a spring system, said spring system comprising:

a housing body having a front portion with a front end, a rear portion with a rear end, and an internal cavity;

a rod that is at least partially positioned in said internal cavity and at least partially extending outwardly from said front end of said housing body, said rod movable between said fully extended and fully retracted positions, said rod having a front end and a back end;

a first compressible sleeve formed of a compressible and/or deformable material configured to affect movement of said rod within said internal cavity when said first compressible sleeve is exposed to a compression force, said first compression sleeve configured to move relative to said rod along only a portion of a longitudinal length of said rod as said rod moves from said fully extended position to said fully retracted position and from said fully retracted position to said fully extended position such that said compressible sleeve moves to different positions along said longitudinal length of said rod;

a first stop, said first stop a) connected to said rod and spaced from said front end and said back end of said rod, or b) fixed in position in said internal cavity of said housing body; said first compressible sleeve positioned between i) said first stop and said back end of said rod, or ii) said first stop and said front end of said housing; said first compressible sleeve having a width such that said first compressible sleeve does not simultaneously contact I) said first stop and said back end of said rod, or II) said first stop and said front end of said housing such that at least one end of said first compressible sleeve is caused to disengage from any structure in said housing body when said rod moves from said fully extended position to said fully retracted position and from said fully retracted position to said fully extended position; said first stop configured to limit movement of said first compressible sleeve as said rod moves between said fully extended and fully retracted positions, said first compression sleeve movably positioned on said rod so as to engage and to disengage from said first stop as said rod moves between said fully extended to said fully retracted position and said fully retracted position; and,

a compression structure configured to cause said first compressible sleeve to compress and/or deform when said rod moves between said fully extended and fully retracted positions, said compression structure positioned on a portion of said rod, on an inner surface of said internal cavity, or combinations thereof; and,

b. applying a force to an end of said rod to cause said rod to move between said fully extended and fully retracted positions, said movement of said rod causing said first compressible sleeve to compress and/or deform, said compression and/or deformation of said first compression sleeve causing increased friction between said first compression sleeve and a) said rod, b) said inner surface of said interior cavity, c) a structure in said interior cavity, or d) combinations thereof.

14. The method as defined in claim 13 , wherein said first compressible sleeve is at least partially positioned about said rod, said first compressible sleeve is caused to compress and/or deform when said rod moves between said fully extended and fully retracted positions when a) said first compressible sleeve moves along a longitudinal length of a portion of said rod that has a variable cross-sectional area, variable cross-sectional shape, or combinations thereof, b) said first compressible sleeve contacts a portion of said inner surface of said interior cavity that has a variable cross-sectional area, variable cross-sectional shape, or combinations thereof, or c) a and b.

15. The method as defined in claim 13 , wherein said compression structure includes a portion of said rod that is positioned between said first stop and said back end of said rod and which compression structure has a variable cross-sectional area, a variable cross-sectional shape, or combinations thereof, said compression structure is configured to contact said first compressible sleeve when said rod moves between said fully extended and fully retracted positions.

16. The method as defined in claim 13 , wherein said compression structure is positioned on a portion of said interior cavity and which compression structure has a variable cross-sectional area, a variable cross-sectional shape, or combinations thereof, said compression structure is configured to contact said first compressible sleeve when said rod moves between said fully extended and fully retracted positions.

17. The method as defined in claim 15 , wherein said compression structure is positioned on a portion of said interior cavity and which compression structure has a variable cross-sectional area, a variable cross-sectional shape, or combinations thereof, said compression structure is configured to contact said first compressible sleeve when said rod moves between said fully extended and fully retracted positions.

18. The method as defined in claim 13 , including a front bushing that is positioned at least partially in said internal cavity and located at said front portion of said housing body, said front bushing includes an opening to enable at least a portion of said rod to move through said opening as said rod moves between fully extended and fully retracted positions, said first compression sleeve configured to engage said first stop while being spaced from said front bushing, said first compression sleeve configured to engage said front bushing while being spaced from said first stop.

19. The method as defined in claim 16 , including a front bushing that is positioned at least partially in said internal cavity and located at said front portion of said housing body, said front bushing includes an opening to enable at least a portion of said rod to move through said opening as said rod moves between fully extended and fully retracted positions, said first compression sleeve configured to engage said first stop while being spaced from said front bushing, said first compression sleeve configured to engage said front bushing while being spaced from said first stop.

20. The method as defined in claim 17 , including a front bushing that is positioned at least partially in said internal cavity and located at said front portion of said housing body, said front bushing includes an opening to enable at least a portion of said rod to move through said opening as said rod moves between fully extended and fully retracted positions, said first compression sleeve configured to engage said first stop while being spaced from said front bushing, said first compression sleeve configured to engage said front bushing while being spaced from said first stop.

21. The method as defined in claim 13 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

22. The method as defined in claim 14 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

23. The method as defined in claim 15 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

24. The method as defined in claim 16 , including a mechanical spring positioned in said internal cavity of said housing, at least a portion of said mechanical spring positioned between a) said back end of said rod and said rear end of said housing body, or b) said front end of said housing body and said back end of said rod.

Assignments (7)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2025
From: BARNES GROUP INC.
To: BG MC US HOLDINGS, LLC
Reel/Frame 072670/0385 →
SECURITY INTEREST Recorded Oct 24, 2025
From: SYNVENTIVE MOLDING SOLUTIONS, INC.; BG MC US HOLDINGS, LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 073256/0254 →
RELEASE OF SECURITY INTEREST Recorded Oct 22, 2025
From: WILMINGTON TRUST, NATIONAL ASSOCIATION
To: SYNVENTIVE MOLDING SOLUTIONS, INC.; BARNES GROUP INC.
Reel/Frame 073156/0869 →
RELEASE OF SECURITY INTEREST Recorded Jan 31, 2025
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: BARNES GROUP INC.; SYNVENTIVE MOLDING SOLUTIONS, INC.
Reel/Frame 070078/0168 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS (FIRST LIEN) Recorded Jan 28, 2025
From: SYNVENTIVE MOLDING SOLUTIONS, INC.
To: WILMINGTON TRUST, NATIONAL ASSOCIATION
Reel/Frame 070031/0121 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS Recorded Sep 19, 2023
From: BARNES GROUP INC.; SYNVENTIVE MOLDING SOLUTIONS, INC.
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 064950/0142 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 25, 2017
From: MCCOY, JOEL T.; SCHROEDER, TYLER; VINE, ADVIAN
To: BARNES GROUP INC.
Reel/Frame 043944/0691 →
Continuity (3)
Continuation 15154117 · May 13, 2016
Provisional Application 62161556 · May 14, 2015
Related Publication 20180045265A1 · Feb 15, 2018