IP Library Granted Patent US 9,835,224
Granted Patent B2
US 9,835,224 · App. 14/931,203 · Granted Dec 5, 2017

Torsional vibration damper

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Quick Facts
Patent No.
US 9,835,224
App. No.
14/931,203
Granted
Dec 5, 2017
Kind
B2
Abstract

A torsional vibration damper comprises an outer housing, an inner part concentric relative to the outer housing, a plurality of chambers formed between the outer housing and the inner part and being filled with a damping medium, a plurality of leaf spring assemblies joining the outer housing and the inner part in a torsionally flexible manner, wherein each of the leaf spring assemblies is arranged in one of said chambers and separates the corresponding chamber into sub-chambers, a plurality piston chambers formed separately in the outer housing, wherein each piston chamber is connected with the sub-chambers of one of the chambers, and a plurality of pistons adjustably arranged in the piston chambers, respectively, for controlling the flow of damper medium between the sub-chambers of a chamber. The damping properties of this torsional vibration damper can be adjusted easily.

Claims (42)

1. A torsional vibration damper, comprising:

an outer housing;

an inner part concentric relative to the outer housing;

a plurality of chambers formed between the outer housing and the inner part and being filled with a damping medium;

a plurality of leaf spring assemblies joining the outer housing and the inner part in a torsionally flexible manner, wherein each of the leaf spring assemblies is arranged in one of said chambers and separates the corresponding chamber into at least two sub-chambers;

a plurality of piston chambers formed separately in the outer housing,

wherein for each of said chambers, the sub-chambers of said chamber are connected to one and the same piston chamber, respectively; and

a plurality of pistons adjustably arranged in the piston chambers, respectively, for controlling the flow of damper medium between the sub-chambers of the corresponding chamber.

2. The torsional vibration damper of claim 1 , wherein the pistons are mounted into the piston chambers from a side opposite to the chambers receiving the leaf spring assemblies.

3. The torsional vibration damper of claim 2 , wherein a control gap is formed between the piston and a portion of the outer housing within the corresponding piston chamber, which control gap is arranged remote from the chamber and adjustable through the piston.

4. The torsional vibration damper of claim 3 , wherein each chamber is delimited axially by an inner face of a side wall of the outer housing and wherein the control gap is fluidly connected with the chamber via openings formed in the side wall and extending axially through the side wall from the chamber to the piston chamber.

5. The torsional vibration damper of claim 4 wherein the piston chambers are spaced apart from the chambers by partition walls that are formed integrally with the side wall of the outer housing.

6. The torsional vibration damper of claim 1 wherein the piston chambers are spaced apart from the chambers by partition walls that are formed integrally with a side wall of the outer housing.

7. The torsional vibration damper of claim 1 , wherein each piston chamber is connected via fluid channels with the sub-chambers of the corresponding chamber, each of said fluid channels being formed by one or more openings in the outer housing.

8. The torsional vibration damper of claim 1 , wherein said chambers are separated in circumferential direction by inner circumferential sections, and at least one of the chambers is divided by the leaf spring assembly into two sub-chambers, namely a first sub-chamber and a second sub-chamber, that are formed between an outer side of the outermost spring and an opposing wall of the adjacent inner circumferential sections, respectively.

9. The torsional vibration damper of claim 1 , wherein said chambers are separated in circumferential direction by inner circumferential sections, and at least one of the chambers is divided by the leaf spring assembly into three sub-chambers, namely a first sub-chamber and a second sub-chamber, that are formed between an outer side of the outermost spring and an opposing wall of the adjacent inner circumferential sections, respectively, and a third sub-chamber formed between at least two springs of the leaf spring assembly.

10. The torsional vibration damper of claim 1 , further comprising a plurality of locking means for individually securing the positions of the pistons in the piston chambers.

11. The torsional vibration damper of claim 1 , wherein each piston chamber is formed as a ring around a central projection and the corresponding piston is fastened on the projection.

12. The torsional vibration damper of claim 11 , wherein the piston is threaded engaged with the central projection.

13. The torsional vibration damper of claim 12 , wherein the central projection has an external thread and the piston is threaded engaged with the external thread of the central projection.

14. The torsional vibration damper of claim 11 , wherein the piston is countered by a screw.

15. The torsional vibration damper of claim 14 , wherein the screw extends through the piston and is threaded engaged with a threaded hole on the central projection.

16. The torsional vibration damper of claim 1 , wherein a sealing ring is arranged between an outer circumferential wall of the piston and an inner circumferential wall of the piston chamber.

17. A torsional vibration damper, comprising:

an outer housing;

an inner part concentric relative to the outer housing;

a plurality of chambers formed between the outer housing and the inner part and being filled with a damping medium;

a plurality of leaf spring assemblies joining the outer housing and the inner part in a torsionally flexible manner, wherein each of the leaf spring assemblies is arranged in one of said chambers and separates the corresponding chamber into at least two sub-chambers;

a plurality of piston chambers formed separately in the outer housing, wherein for each of said chambers, the sub-chambers of said chamber are connected to one and the same piston chamber, respectively; and

a plurality of pistons adjustably arranged in the piston chambers, respectively, for controlling the flow of damper medium between the sub-chambers of the corresponding chamber when displacement of damping medium occurs in said chamber due to bending of the corresponding leaf spring assembly;

wherein the pistons are mounted into the piston chambers from a side opposite to the chambers receiving the leaf spring assemblies.

18. The torsional vibration damper of claim 17 , further comprising a plurality of locking means for individually securing the positions of the pistons in the piston chambers.

19. A torsional vibration damper, comprising:

an outer housing;

an inner part concentric relative to the outer housing;

a plurality of chambers formed between the outer housing and the inner part and being filled with a damping medium;

a plurality of leaf spring assemblies joining the outer housing and the inner part in a torsionally flexible manner, wherein each of the leaf spring assemblies is arranged in one of said chambers and separates the corresponding chamber into at least two sub-chambers;

a plurality of piston chambers formed separately in the outer housing, wherein for each of said chambers, the sub-chambers of said chamber are connected to one and the same piston chamber, respectively; and

a plurality of pistons adjustably arranged in the piston chambers, respectively, for controlling the flow of damper medium between the sub-chambers of the corresponding chamber when displacement of damping medium occurs in said chamber due to bending of the corresponding leaf spring assembly;

wherein a control gap is formed between the piston and a portion of the outer housing within the corresponding piston chamber, which control gap is arranged remote from the chamber and adjustable through the piston; and

wherein each chamber is delimited axially by an inner face of a side wall of the outer housing and wherein the control gap is fluidly connected with the chamber via openings formed in the side wall and extending axially through the side wall from the chamber to the piston chamber.

20. The torsional vibration damper of claim 19 , further comprising a plurality of locking means for individually securing the positions of the pistons in the piston chambers.

Assignments (2)
CHANGE OF NAME Recorded Oct 2, 2023
From: ELLERGON ANTRIEBSTECHNIK GMBH
To: GEISLINGER GROUP GMBH
Reel/Frame 065093/0413 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2015
From: GEISLINGER, MATTHIAS; GEISLINGER, CORNELIUS
To: ELLERGON ANTRIEBSTECHNIK GESELLSCHAFT M.B.H.
Reel/Frame 036957/0782 →