Claims
- 1. A damper piston assembly comprising:
a) a rod having a longitudinal axis, a riveted end, and a longitudinal stop; b) a piston surrounding the rod between the riveted end and the longitudinal stop, wherein the piston includes a valve assembly having a valve body with an orifice extending therethrough; c) a rivet disk surrounding the rod and having an opening for fluid communication with the orifice, wherein the rivet disk is longitudinally secured between the piston and the riveted end of the rod; and d) a spring disposed in compression longitudinally between the rivet disk and the longitudinal stop of the rod.
- 2. The damper piston assembly of claim 1, wherein the rod is a monolithic rod.
- 3. The damper piston assembly of claim 1, wherein the rivet disk directly contacts the riveted end of the rod.
- 4. The damper piston assembly of claim 1, wherein the rivet disk directly contacts the piston.
- 5. The damper piston assembly of claim 1, wherein the spring directly contacts the rivet disk.
- 6. The damper piston assembly of claim 1, wherein the spring consists essentially of a Belleville washer.
- 7. The damper piston assembly of claim 1, wherein the rod is substantially a right-circular cylindrical rod having a larger diameter from the longitudinal stop longitudinally away from the riveted end and having a smaller diameter from the longitudinal stop toward the riveted end.
- 8. The damper piston assembly of claim 1, wherein the orifice is a compression orifice, wherein the valve assembly further includes a compression disk located adjacent the valve body and covering the compression orifice, and wherein, when the valve assembly is immersed in fluid, fluid can be forced through the compression orifice when the pressure of the fluid urges the compression disk away from the compression orifice.
- 9. The damper piston assembly of claim 1, wherein the orifice is a rebound orifice, wherein the valve assembly further includes a rebound disk located adjacent the valve body and covering the rebound orifice, and wherein, when the valve assembly is immersed in fluid, fluid can be forced through the rebound orifice when the pressure of the fluid urges the rebound disk away from the rebound orifice.
- 10. The damper piston assembly of claim 9, wherein the valve body also includes a compression orifice, wherein the valve assembly further includes a compression disk located adjacent the valve body and covering the compression orifice, and wherein, when the valve assembly is immersed in fluid, fluid can be forced through the compression orifice when the pressure of the fluid urges the compression disk away from the compression orifice.
- 11. A damper comprising:
a) a tube containing a damping fluid; and b) a damper piston assembly including:
(1) a rod having a longitudinal axis, a riveted end, and a longitudinal stop; (2) a piston disposed within, and slidingly engageable with, the tube, wherein the piston surrounds the rod between the riveted end and the longitudinal stop, wherein the piston includes a valve assembly having a valve body with an orifice extending therethrough; (3) a rivet disk having a hole for fluid communication with the orifice, wherein the rivet disk is longitudinally secured between the piston and the riveted end of the rod; and (4) a spring disposed in compression longitudinally between the rivet disk and the longitudinal stop of the rod.
- 12. The damper of claim 11, wherein the spring consists essentially of a Belleville washer.
- 13. The damper of claim 11, wherein the rod is substantially a right-circular cylindrical rod having a larger diameter from the longitudinal stop longitudinally away from the riveted end and having a smaller diameter from the longitudinal stop toward the riveted end.
- 14. A method for making a damper piston assembly comprising the steps of:
a) providing a rod having a longitudinal axis, a first end, and a longitudinal stop; b) providing a piston including a valve assembly having a valve body with an orifice extending therethrough and with a mounting hole extending therethrough; c) mounting the piston on the rod with the first end of the rod extending through the mounting hole of the valve body; d) mounting a spring on the rod, e) providing a rivet disk having a mounting hole extending therethrough and having an opening extending therethrough for fluid communication with the orifice; f) mounting the rivet disk on the rod after mounting the piston and the spring on the rod; g) longitudinally moving the rivet disk against the piston compressing the spring with the first end of the rod extending through the mounting hole of the rivet disk; and h) after step g), peening the first end of the rod against the rivet disk to define a riveted end of the rod.
- 15. The method of claim 14, wherein the spring consists essentially of a Belleville washer, and wherein step d) is performed after step c).
- 16. The method of claim 14, wherein the rod of step a) is substantially a right-circular cylindrical rod having a larger diameter from the longitudinal stop longitudinally away from the riveted end and having a smaller diameter from the longitudinal stop toward the riveted end.
- 17. The method of claim 14, wherein the orifice of step b) is a compression orifice, wherein the valve assembly of step b) further includes a compression disk located adjacent the valve body and covering the compression orifice, and wherein, when the valve assembly is immersed in fluid, fluid can be forced through the compression orifice when the pressure of the fluid urges the compression disk away from the compression orifice.
- 18. The method of claim 14, wherein the orifice of step b) is a rebound orifice, wherein the valve assembly of step b) further includes a rebound disk located adjacent the valve body and covering the rebound orifice, and wherein, when the valve assembly is immersed in fluid, fluid can be forced through the rebound orifice when the pressure of the fluid urges the rebound disk away from the rebound orifice.
- 19. The method of claim 18, wherein the valve body of step b) also includes a compression orifice, wherein the valve assembly of step b) further includes a compression disk located adjacent the valve body and covering the compression orifice, and wherein, when the valve assembly is immersed in fluid, fluid can be forced through the compression orifice when the pressure of the fluid urges the compression disk away from the compression orifice.
- 20. The method of claim 14, wherein step d) is performed after step c), wherein the spring in a relaxed state extends beyond the piston, and also including the steps of:
measuring, after step d) and before step f), the force required to compress the spring flush with the piston; and then, before step f), mounting a shim disk, as needed, on the rod, wherein the thickness of the shim disk is chosen so that, after step h), the spring exerts a predetermined force.
- 21. The method of claim 20, wherein the valve assembly also includes an orifice disk located adjacent the valve body and covering the orifice, and wherein after step h), the orifice disk experiences the predetermined force of the spring.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part application of U.S. patent application Ser. No. 09/481,110 filed Jan. 11, 2000, the entire disclosure of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09481110 |
Jan 2000 |
US |
Child |
09829444 |
Apr 2001 |
US |