Claims
- 1. A hydraulic system for suppressing oscillation in a linkage of heavy equipment comprising:
first and second hydraulic conduits; a crossover valve in communication with the first and second hydraulic conduits to control the flow of hydraulic fluid between the first and second conduits; and a hydraulic control circuit in communication with the valve and configured to open the valve in response to the deceleration of the linkage of heavy equipment.
- 2. The system of claim 1 further comprising at least one dual-ported hydraulic cylinder coupled to the linkage to move the linkage and further wherein the hydraulic control circuit is responsive to a flow of fluid ejected from the cylinder by conversion of kinetic energy of the linkage.
- 3. The system of claim 2, wherein the valve is configured to open in response to the flow of fluid ejected from the cylinder by conversion of kinetic energy of the linkage.
- 4. The system of claim 3, wherein the valve, once opened, is configured to remain open for a predetermined period of time after stoppage of the flow of fluid ejected from the cylinder by conversion of kinetic energy of the linkage.
- 5. The system of claim 4, wherein the hydraulic control circuit includes a first hydraulic signal line coupled to the valve to apply a closing force to the valve and a second hydraulic signal line coupled to the valve to apply an opening force to the valve.
- 6. The system of claim 5, wherein fluid pressure applied to the first signal line tends to close the valve and fluid pressure applied to the second hydraulic signal line tends to open the valve.
- 7. The system of claim 6, wherein the first hydraulic signal line is fluidly coupled to the first conduit when the fluid pressure in the first conduit is greater than the fluid pressure in the second conduit and is also fluidly coupled to the second conduit when the fluid pressure in the second conduit is greater than the fluid pressure in the first conduit.
- 8. The system of claim 7, wherein the second hydraulic signal line is fluidly coupled to the first conduit when the fluid pressure in first conduit is greater than the fluid pressure in the second conduit and is also fluidly coupled to the second conduit when the fluid pressure in second conduit is greater than the fluid pressure in the first conduit.
- 9. The system of claim 8, wherein the first hydraulic signal line is configured to prevent hydraulic fluid that has entered the first hydraulic signal line from returning to the first and second conduits.
- 10. The system of claim 9, wherein the first hydraulic signal line includes at least one check valve configured to prevent fluid in the first hydraulic line from returning to the first and second conduits.
- 11. The system of claim 1 wherein the valve is configured (1) to open in response to a flow of fluid in the first conduit that is ejected from the cylinder by conversion of kinetic energy of the linkage, and (2) to open in response to a flow of fluid in the second conduit that is ejected from the cylinder by conversion of kinetic energy of the linkage.
- 12. The system of claim 1 further comprising a first flow restriction device fluidly coupled to the first conduit between a first and a second portion of the first conduit to provide a first pressure drop in response to fluid flow in a first direction through the first conduit.
- 13. The system of claim 12, wherein the hydraulic control circuit includes a first hydraulic signal line fluidly coupled to and between the valve and the first portion of the first conduit and configured to apply a closing force to the valve, and a second hydraulic signal line fluidly coupled to and between the valve and the second portion of the first conduit and configured to apply an opening force to the valve.
- 14. The system of claim 13 wherein fluid pressure applied to the first signal line tends to close the valve and fluid pressure applied to the second hydraulic signal line tends to open the valve.
- 15. The system of claim 12 further comprising a second flow restriction device fluidly coupled to the second conduit between a first and a second portion of the second conduit to provide a second pressure drop in response to fluid flow in a first direction through the second conduit.
- 16. The system of claim 12 further comprising a third flow restriction device fluidly coupled to the first conduit between the first and the second portion of the first conduit to provide a second pressure drop in response to fluid flow through the first conduit in a second direction opposite the first direction.
- 17. The system of claim 16, wherein the first pressure drop and the second pressure drop are different.
- 18. The system of claim 17, wherein the first pressure drop is less than that of the second pressure drop.
- 19. The system of claim 17, wherein the valve is configured (1) not to open when a pressure difference equal to the first pressure drop is applied across the valve; and (2) to open when a pressure difference equal to the second pressure drop is applied across the valve.
- 20. A backhoe comprising:
(a) a vehicle; (b) a hydraulic fluid pump; (c) a hydraulic fluid tank fluidly coupled to and providing hydraulic fluid to the pump; (d) a backhoe assembly coupled to the vehicle to swing with respect to the vehicle; (e) at least one bi-directional dual-ported boom swing cylinder coupled to the backhoe assembly and the vehicle to swing the assembly; (f) a bi-directional hydraulic control valve fluidly coupled to the pump and tank and to the at least one cylinder to regulate the flow rate and direction of the flow of actuating fluid to the at least one cylinder; (g) first and second hydraulic conduits coupled to and between the control valve and the at least one cylinder, wherein the first and second hydraulic conduits are disposed to conduct the flow of hydraulic fluid to the at least one cylinder from the control valve and to the control valve from the at least one cylinder; and (h) a swing damping circuit coupled to the first and second conduits for suppressing oscillation of the backhoe assembly, the circuit comprising:
(i) a crossover valve in fluid communication with the first and second conduits to control the flow of hydraulic fluid between the first and second conduits; and (ii) a hydraulic control circuit in communication with the crossover valve and configured to open the crossover valve in response to deceleration of the backhoe assembly with respect to the vehicle.
- 21. The backhoe of claim 20, wherein the hydraulic control circuit is responsive to a flow of fluid ejected from the cylinder by conversion of kinetic energy of the backhoe assembly.
- 22. The backhoe of claim 21, wherein the crossover valve is configured to open in response to the flow of fluid ejected from the cylinder by conversion of kinetic energy of the backhoe assembly.
- 23. The backhoe of claim 22, wherein the hydraulic control circuit includes a first hydraulic signal line coupled to the crossover valve to apply a closing force to the crossover valve, and a second hydraulic signal line coupled to the crossover valve to apply an opening force to the crossover valve.
- 24. The backhoe of claim 23, wherein fluid pressure applied to the first hydraulic signal line tends to close the crossover valve and fluid pressure applied to the second hydraulic signal line tends to open the crossover valve.
- 25. The backhoe of claim 24, wherein the first hydraulic signal line is fluidly coupled to the first conduit when the fluid pressure in the first conduit is greater than the fluid pressure in the second conduit, and wherein the first hydraulic signal line is also fluidly coupled to the second conduit when the fluid pressure in the second conduit is greater than the fluid pressure in the first conduit.
- 26. The backhoe of claim 25, wherein the second hydraulic signal line is fluidly coupled to the first conduit when the fluid pressure in the first conduit is greater than the fluid pressure in the second conduit and wherein the second hydraulic signal line is also fluidly coupled to the second conduit when the fluid pressure in the second conduit is greater than the fluid pressure in the first conduit.
- 27. The backhoe of claim 26, wherein the first hydraulic signal line is configured to prevent hydraulic fluid that has entered the first hydraulic signal line from returning to the first and second conduits.
- 28. The backhoe of claim 27, wherein the first hydraulic signal line includes at least one check valve configured to prevent fluid from the first hydraulic signal line from returning to the first and second conduits.
- 29. The backhoe of claim 20 wherein the crossover valve is configured (1) to open in response to a flow of fluid in the first conduit that is ejected from the cylinder by conversion of kinetic energy of the backhoe assembly, and (2) to open in response to a flow of fluid in the second conduit that is ejected from the cylinder by conversion of kinetic energy of the backhoe assembly.
- 30. The backhoe of claim 29, wherein the hydraulic control circuit is configured to apply the fluid ejected from the cylinder to the crossover valve to open the crossover valve to a position in which fluid can flow between the first and second conduits.
- 31. The backhoe of claim 29 wherein the control valve is configured to cause the deceleration of the backhoe assembly.
- 32. The backhoe of claim 31, wherein the cylinder includes an internal piston that is movable inside the cylinder to define two regions: a first region coupled to the first hydraulic conduit to receive an actuating fluid flow from the first conduit and a second region coupled to the second hydraulic conduit to receive an actuating fluid flow from the second hydraulic conduit.
- 33. The system of claim 7 wherein the first hydraulic signal line always fluidly couples one of the first and second conduits, but not both, to the crossover valve.
- 34. The system of claim 16 further comprising a fourth flow restriction device fluidly coupled to the second conduit between the first and second portions of the second conduit to provide a third pressure drop in response to fluid flow through the second conduit in a third direction.
- 35. The system of claim 34 wherein the first pressure drop and the third pressure drop are the same.
- 36. The system of claim 34 wherein the first pressure drop and the second pressure drop are different.
CROSS-REFERENCES TO RELATED APPLICATIONS, IF ANY
[0001] This application is a continuation-in-part of U.S. Ser. No. 09/661,348 filed on Sep. 14, 2000 and entitled “Hydraulic System And Method For Regulating Pressure Equalization To Suppress Oscillation In Heavy Equipment”.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09661348 |
Sep 2000 |
US |
Child |
09962893 |
Sep 2001 |
US |