IP Library Granted Patent US 9,038,790
Granted Patent B2
US 9,038,790 · App. 13/672,295 · Granted May 26, 2015

Frequency sensitive shock absorber

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Quick Facts
Patent No.
US 9,038,790
App. No.
13/672,295
Granted
May 26, 2015
Kind
B2
Abstract

A shock absorber is disclosed herein with a frequency sensitive damping force that includes a cylinder containing a damping medium, a piston rod which is axially movable in the cylinder, and a piston assembly arranged for axial movement in the damping medium. The piston assembly is connected to the piston rod and divides the cylinder in a working space on each side of the piston. The piston assembly includes a flow path fluidly coupled to a frequency sensitive element movable relative to the piston assembly.

Claims (81)

1. A frequency sensitive shock absorber, comprising:

a cylinder containing a damping medium;

a piston rod positioned for axial movement within the cylinder along a central axis;

a piston assembly coupled to the piston rod and arranged for axial movement in the damping medium along the central axis to separate the cylinder into a first working space on a first side of the piston assembly and a second working space on a second side of the piston assembly, the piston assembly including:

a first flow path allowing flow of the damping medium therein and extending from the first side to the second side;

a second flow path distinct from the first flow path, allowing flow of the damping medium therein extending from the first side to the second side;

a movable element positioned in the second flow path and movable along the second flow path with respect to the piston assembly; and

wherein the second flow path defines a first opening fluidly coupled with the first working space and a second opening fluidly coupled with the second working space, the movable element movable among a first position, wherein the movable element blocks flow to the first opening, a second position, wherein the movable element blocks flow to the second opening, and an intermediate position allowing fluid flow to both the first and second openings.

2. The shock absorber of claim 1 , wherein the piston assembly includes:

a first piston body; and

a second piston body cooperating with the first piston body.

3. The shock absorber of claim 2 , wherein the first piston body defines an outer annular surface and the second piston body defines an inner annular surface facing the outer annular surface to define a cavity for movement of the movable element, the cavity defining at least a portion of the second flow path.

4. The shock absorber of claim 2 , wherein the second piston body defines the second flow path separate from the first piston body, the movable element movable within the second piston body.

5. The shock absorber of claim 1 , wherein the movable element is spaced apart from an inner surface of the cylinder.

6. The shock absorber of claim 1 , wherein the movable element is adjacent an inner surface of the cylinder.

7. The shock absorber of claim 1 , wherein the movable element is sealed to a first surface of the second flow path and a second surface of the second flow path so as to segregate the damping medium on either side of the movable element.

8. The shock absorber of claim 1 , wherein the first flow path is fluidly isolated from the second flow path in a direction of flow from the first side to the second side.

9. The shock absorber of claim 1 , wherein the piston assembly includes an unrestricted bleed hole extending from the second working space to the first flow path.

10. A frequency sensitive shock absorber, comprising:

a cylinder containing a damping medium;

a piston rod positioned for axial movement within the cylinder along a central axis;

a piston assembly arranged for axial movement in the damping medium along the central axis to separate the cylinder into a first working space on a first side of the piston assembly and a second working space on a second side of the piston assembly, the piston assembly including:

an inner piston body having an outer cylindrical surface, comprising:

a central aperture for connection of the piston rod to the piston assembly;

a first flow path extending from the first side to the second side, the first flow path defining a first inlet proximate the first side and a first outlet proximate the second side;

a second flow path extending from the second side to the first side, the second flow path defining a second inlet proximate the second side and a second outlet proximate the first side;

a third flow path extending from the first side to the second side, the third flow path defining a third inlet proximate the first side, a third outlet proximate the second side and a bleed hole proximate the second side and spaced apart from the third outlet;

an outer piston body cooperating with the inner piston body and defining an inner annular surface facing the inner piston body and an outer annular surface facing the cylinder,

wherein the inner annular surface of the outer piston body and the outer cylindrical surface of the inner piston body form a fourth flow path extending from the first side to the second side;

a first valve disk positioned on the first side and covering the second outlet;

a second valve disk positioned on the second side and covering the first outlet;

a movable element positioned in the fourth flow path and movable along the fourth flow path with respect to the inner piston body and the outer piston body.

11. The shock absorber of claim 10 , wherein each of the first, second, third and fourth flow paths are arranged in parallel.

12. The shock absorber of claim 10 , wherein the bleed hole is oriented substantially perpendicular to the central axis.

13. The shock absorber of claim 10 , wherein the fourth flow path defines a fourth inlet proximate the first bide formed between the inner piston body and the outer piston body.

14. The shock absorber of claim 13 , wherein the fourth flow path defines a fourth outlet proximate the second side that is fluidly coupled to the second working space.

15. The shock absorber of claim 14 , wherein the fourth outlet is oriented obliquely with respect to the central axis.

16. The shock absorber of claim 15 , wherein the fourth outlet is formed entirely within the inner piston body.

17. A method of providing variable damping force based on frequency of movement in a frequency sensitive shock absorber, comprising:

providing a cylinder containing a damping medium;

positioning a piston rod for axial movement within the cylinder along a central axis;

coupling a piston assembly to the piston rod and arranging the piston assembly for axial movement in the damping medium along the central axis to separate the cylinder into a first working space on a first side of the cylinder and a second working space on a second side of the piston assembly, the piston assembly defining a flow path allowing flow of the damping medium therein and extending from a first opening fluidly coupled with the first working space to a second opening fluidly coupled to the second working space,

positioning a movable element in the flow path, the movable element movable among a first position, wherein the movable element blocks flow to the first opening, a second position, wherein the movable element blocks flow to the second opening, and an intermediate position allowing fluid flow to both the first and second openings.

18. The method of claim 17 , wherein the piston assembly includes:

a first piston body; and

a second piston body cooperating with the first piston body.

19. The method of claim 18 , wherein the first piston body defines an outer annular surface and the second piston body defines an inner annular surface facing the outer annular surface to define a cavity for movement of the movable element, the cavity defining at least a portion of the flow path.

20. The method of claim 18 , wherein the second piston body defines the second flow path separate from the first piston body, the movable element movable within the second piston body.

21. The method of claim 17 , wherein the movable element is spaced apart from an inner surface of the cylinder.

22. The method of claim 17 , wherein the movable element is adjacent an inner surface of the cylinder.

23. The method of claim 17 , wherein the piston assembly further defines a second flow path fluidly isolated from the first-mentioned flow path in a direction of flow from the first side to the second side.

24. The method of claim 17 , wherein the first opening is substantially parallel with respect to the axial movement of the piston assembly and wherein the second opening is obliquely oriented with respect to the axial movement.

25. The method of claim 17 , further comprising:

moving the piston assembly during a compression stroke to direct fluid flow through the second opening and a second flow path distinct from the first-mentioned flow path while the movable element is in the intermediate position; and

directing fluid flow through the second flow path and blocking fluid flow through the first opening during the compression stroke while the movable element is in the first position.

26. The method of claim 25 , further comprising:

moving the piston assembly during a rebound stroke in an opposite direction from the compression stroke to direct fluid through the first opening and a third flow path distinct from the first-mentioned flow path and the second flow path while the movable element is in the intermediate position; and

directing fluid flow through the third flow path and blocking fluid flow through the second opening during the rebound stroke while the movable element is in the second position.

27. A frequency sensitive shock absorber, comprising:

a cylinder containing a damping medium;

a piston rod positioned for axial movement within the cylinder along a central axis;

a piston assembly coupled to the piston rod and arranged from axial movement in the damping medium along the central axis to separate the cylinder into a first working space on a first side of the piston assembly and a second working space on a second side of the piston assembly;

means for varying damping force placed on the piston assembly based on a frequency of movement of the piston assembly;

means for providing a first stiffness of the shock absorber during a first phase of movement of the piston assembly;

means for providing a second stiffness of the shock absorber during a second phase of movement of the piston assembly, wherein the first stiffness is less than the second stiffness.

28. The shock absorber of claim 27 , further comprising:

means for altering stiffness of the shock absorber dependent upon speed and amplitude of travel for the piston assembly.

29. The shock absorber of claim 27 , further comprising:

means for controlling an amplitude of movement for a movable element relative to the piston assembly dependent upon a percentage of volume of the movable element relative to a cavity positioned in the piston assembly that restrains movement of the movable member.

30. The shock absorber of claim 27 , further comprising:

means for opening and closing a fluid path extending from the first working space to the second working space.

31. The shock absorber of claim 27 , further comprising:

means for altering damping forces within the shock absorber based on a speed of travel for the piston assembly.

32. The shock absorber of claim 27 , further comprising:

means for altering damping forces within the shock absorber based on a distance of travel for the piston assembly.

33. A frequency sensitive shock absorber, comprising:

a cylinder containing a damping medium;

a piston rod positioned for axial movement within the cylinder along a central axis;

a piston assembly coupled to the piston rod and arranged from axial movement in the damping medium along the central axis to separate the cylinder into a first working space on a first side of the piston assembly and a second working space on a second side of the piston assembly;

means for varying damping force placed on the piston assembly based on a frequency of movement of the piston assembly; and

means for opening and closing a fluid path extending from the first working space to the second working space.

Assignments (15)
RELEASE OF SECURITY INTEREST Recorded Jan 27, 2026
From: LCL TEXAS SOLUTIONS, LLC
To: MAG CREATIVE GROUP, LLC
Reel/Frame 073602/0984 →
SECURITY INTEREST Recorded Nov 3, 2023
From: V & H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC
To: LCL TEXAS SOLUTIONS, LLC
Reel/Frame 065450/0325 →
RELEASE OF SECURITY INTEREST Recorded Oct 26, 2023
From: BANK OF AMERICA, NA
To: ED TUCKER DISTRIBUTOR, INC.; KURYAKYN HOLDINGS, LLC; DFR ACQUISITION LLC; TUCKER-ROCKY CORPORATION, INC.; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC
Reel/Frame 065365/0070 →
PATENT SECURITY AGREEMENT Recorded Jul 18, 2021
From: ED TUCKER DISTRIBUTOR, INC.; DFR ACQUISITION LLC; KURYAKYN HOLDINGS, LLC; TUCKER-ROCKY CORPORATION, INC.; PERFORMANCE MACHINE, LLC; V&H PERFORMANCE, LLC
To: BANK OF AMERICA, N.A., AS AGENT
Reel/Frame 056899/0722 →
RELEASE OF SECURITY INTEREST Recorded Jul 16, 2021
From: WILMINGTON TRUST, NATIONAL ASSOCIATION
To: DFR ACQUISITION; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC; ED TUCKER DISTRIBUTOR, INC.; TUCKER-ROCKY CORPORATION, INC.
Reel/Frame 057354/0075 →
RELEASE OF SECURITY INTEREST Recorded Jul 15, 2021
From: ACF FINCO I LP
To: DFR ACQUISITION CORPORATION; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC; ED TUCKER DISTRIBUTOR, INC.; TUCKER-ROCKY CORPORATION, INC.
Reel/Frame 056890/0001 →
RELEASE OF SECURITY INTEREST Recorded Jul 15, 2021
From: PATHLIGHT CAPITAL FUND I LP
To: DFR ACQUISITION CORPORATION; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC; ED TUCKER DISTRIBUTOR, INC.; TUCKER-ROCKY CORPORATION, INC.
Reel/Frame 057354/0008 →
CHANGE OF NAME Recorded Mar 6, 2020
From: DFR ACQUISITION CORPORATION
To: DFR ACQUISITION LLC
Reel/Frame 052115/0558 →
SECURITY INTEREST Recorded Oct 23, 2019
From: DFR ACQUISITION CORPORATION,; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; ED TUCKER DISTRIBUTOR, INC.; PERFORMANCE MACHINE, LLC; TUCKER-ROCKY CORPORATION, INC.
To: PATHLIGHT CAPITAL FUND I LP
Reel/Frame 050810/0259 →
RELEASE OF SECURITY INTEREST Recorded Oct 22, 2019
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
To: DFR ACQUISITION CORPORATION; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC; ED TUCKER DISTRIBUTOR, INC.; TUCKER-ROCKY CORPORATION, INC.
Reel/Frame 050786/0278 →
SECURITY INTEREST Recorded Jun 25, 2018
From: DFR ACQUISITION CORPORATION; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC; ED TUCKER DISTRIBUTOR, INC.; TUCKER-ROCKY CORPORATION, INC.
To: WILMINGTON TRUST, NATIONAL ASSOCIATION
Reel/Frame 046421/0542 →
SECURITY INTEREST Recorded Mar 30, 2018
From: DFR ACQUISITION CORPORATION; KURYAKYN HOLDINGS, LLC; V&H PERFORMANCE, LLC; PERFORMANCE MACHINE, LLC; ED TUCKER DISTRIBUTOR, INC.; TUCKER-ROCKY CORPORATION, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 046380/0390 →
MERGER Recorded Aug 29, 2016
From: PROGRESSIVE SUSPENSION, LLC
To: PERFORMANCE MACHINE LLC
Reel/Frame 039561/0663 →
MERGER Recorded Aug 1, 2016
From: PROGRESSIVE SUSPENSION, INC.
To: PROGRESSIVE SUSPENSION, LLC
Reel/Frame 039300/0103 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 4, 2013
From: HENIGE, TROY JOSEPH; RAKER, RYAN KENNETH
To: PROGRESSIVE SUSPENSION, INC.
Reel/Frame 030149/0638 →