Claims
- 1. A fluid seal assembly of a pressured system for reducing static friction on a displacement rod of the pressured system, the seal assembly comprising:
a housing portion disposed about the displacement rod; a sealing member disposed on a surface of the housing portion, the sealing member being in circumferential engagement about the displacement rod to define a radial preload on the displacement rod forming a static friction thereon; and an actuator attached to the sealing member and being configured to bend when an electric input is applied thereacross to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 2. The assembly of claim 1 wherein the sealing member includes:
a cover member being in circumferential engagement about the displacement rod, the cover member having first and second sides; a support member being engaged with the first side of the cover member and biasing the cover member against the displacement rod to define the radial preload on the displacement rod forming the static friction thereon when the displacement rod move from a stagnant position within the pressured system; and a backup member engaged with the second side of the cover member for providing support to the cover member.
- 3. The assembly of claim 1 wherein the actuator is a piezoelectric material configured to bend when an electric input is applied across the actuator to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 4. The assembly of claim 1 further comprising:
a sensor configured to sense a vehicle condition relative to the pressured system and send a signal indicative of the vehicle condition; an electronic control unit in electrical communication with the sensor for receiving a sensor signal indicative of the vehicle condition, the electronic control unit configured to regulate an electric input across the actuator based on the signal to bend the actuator to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 5. The assembly of claim 1 wherein the actuator is configured to displace the sealing member from the displacement rod between about 0.025 micron to 0.050 micron to reduce the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 6. The assembly of claim 1 wherein the actuator is configured to bend up to about 0.050 micron when up to about 1 KHz in frequency is applied across the actuator at about ±100 volts.
- 7. The assembly of claim 1 wherein the surface of the pressured system on which the sealing member is disposed is a gland cap surface of a gland cap assembly of the pressured system.
- 8. The assembly of claim 1 wherein the actuator is a ceramic multi-layer ring made of a plurality of piezoelectric layers having screen-printed an internal electrodes extending thereabout, the ring having external electrodes in electrical communication with the internal electrode, the ceramic multi-layer ring being configured to bend when an electric input is applied thereacross to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement is stagnant within the pressured system.
- 9. The assembly of claim 4 wherein the vehicle condition includes vehicle speed, vehicle acceleration, vehicle yaw rate, displacement rod compression movement, displacement rod rebound movement, and vehicle tilt.
- 10. The assembly of claim 1 wherein the actuator is in electrical communication with an electrical source.
- 11. A suspension strut of a pressurized pressured system for a vehicle for reduced static friction on a displacement rod of the pressured system, the vehicle having a wheel contacting a surface under the vehicle and a suspension link suspending the wheel from the vehicle and allowing compression movement of the wheel toward the vehicle and rebound movement of the wheel toward the surface, the suspension strut comprising:
a compressible fluid; a tube and displacement rod adapted to couple the suspension link and the vehicle, the tube including inner walls defining an inner cavity, the inner walls having apertures formed therethrough defining first and second portions of the inner cavity in fluid communication, each of the portions being adapted to contain the compressible fluid and to cooperate with the compressible fluid to supply a suspending spring force biasing the wheel toward the surface, the displacement rod adapted to move into the inner cavity upon the compression movement of the wheel and to move out of the inner cavity upon the rebound movement of the wheel; a cavity piston coupled to the displacement rod and extending to engage with the tube thereby allowing flow of the compressible fluid between the first and second portions of the inner cavity; a housing portion attached to the tube and disposed about the displacement rod; a sealing member for sealing the compressible fluid in the tube, the sealing member being disposed on a surface of the housing portion adjacent the inner walls, the sealing member being in circumferential engagement about the displacement rod to define a radial preload on the displacement rod forming a static friction thereon; an actuator attached to the sealing member and being configured to bend when an electric input is applied thereacross to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod moves within the pressured system; and a gland cap attached to the actuator to provide support to the actuator when the actuator bends to displace the sealing member from the displacement rod.
- 12. The suspension strut of claim 11 wherein the sealing member includes:
a cover member being in circumferential engagement about the displacement rod, the cover member having first and second sides; a support member being engaged with the first side of the cover member and biasing the cover member against the displacement rod to define the radial preload on the displacement rod forming the static friction thereon when the displacement rod move from a stagnant position within the pressured system; and a backup member engaged with the second side of the cover member for providing support to the cover member.
- 13. The suspension strut of claim 11 wherein the actuator is a piezoelectric material configured to bend when an electric input is applied across the actuator to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 14. The suspension strut of claim 11 further comprising:
a sensor configured to sense a vehicle condition relative to the pressured system and send a signal indicative of the vehicle condition; an electronic control unit in electrical communication with the sensor for receiving a sensor signal indicative of the vehicle condition, the electronic control unit configured to regulate an electric input across the actuator based on the signal to bend the actuator to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 15. The suspension strut of claim 11 wherein the actuator is configured to displace the sealing member from the displacement rod between about 0.025 micron to 0.050 micron to reduce the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 16. The suspension strut of claim 11 wherein the actuator is configured to bend up to about 0.050 micron when up to about 1 KHz in frequency is applied across the actuator at about ±100 volts.
- 17. The suspension strut of claim 11 wherein the surface of the pressured system on which the sealing member is disposed is a gland cap surface of a gland cap assembly of the pressured system.
- 18. The suspension strut of claim 11 wherein the actuator is a ceramic multi-layer ring made of a plurality of piezoelectric layers having screen-printed an internal electrodes extending thereabout, the ring having external electrodes in electrical communication with the internal electrode, the ceramic multi-layer ring being configured to bend when an electric input is applied thereacross to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement is stagnant within the pressured system.
- 19. The suspension strut of claim 14 wherein the vehicle condition includes vehicle speed, vehicle acceleration, vehicle yaw rate, displacement rod compression movement, displacement rod rebound movement, and vehicle tilt.
- 20. The suspension strut of claim 11 wherein the actuator is in electrical communication with an electrical source.
- 21. A method of reducing static friction on a displacement rod of a pressured system having a sealing member disposed on a surface of the pressured system and being in circumferential engagement about the displacement rod to define a radial preload on the displacement rod forming a static friction thereon, the method comprising:
sensing a vehicle condition relative to the pressured system; determining a voltage to be applied based on the vehicle condition of the vehicle wheel; and applying an electrical input at the voltage on the pressured system to bend the actuator and displace the sealing member from the displacement rod to reduce the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 22. The method of claim 21 further comprising providing an actuator attached to the sealing member and configured to bend when an electric input is applied thereacross to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 23. The method of claim 22 wherein applying the electrical input on the pressured system includes applying the electrical input on the actuator to bend the actuator and displace the sealing member from the displacement rod to reduce the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 24. The method of claim 22 wherein the actuator is a piezoelectric material configured to bend when an electric input is applied across the actuator to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 25. The method of claim 22 wherein the actuator is configured to displace the sealing member from the displacement rod between about 0.025 micron to 0.050 micron to reduce the static friction on the displacement rod when the displacement rod move from a stagnant position within the pressured system.
- 26. The method of claim 22 wherein the actuator is configured to bend up to about 0.050 micron when up to about 1 KHz in frequency is applied across the actuator at about ±100 volts.
- 27. The method of claim 22 wherein the actuator is a ceramic multi-layer ring made of a plurality of piezoelectric layers having screen-printed an internal electrodes extending thereabout, the ring having external electrodes in electrical communication with the internal electrode, the ceramic multi-layer ring being configured to bend when an electric input is applied thereacross to displace the sealing member from the displacement rod for reducing the static friction on the displacement rod when the displacement is stagnant within the pressured system.
- 28. The method of claim 21 wherein the vehicle condition includes vehicle speed, vehicle acceleration, vehicle yaw rate, displacement rod compression movement, displacement rod rebound movement, and vehicle tilt.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present invention is related to an international patent application having Patent Cooperation Treaty international application no. PCT/US01/48141, filed Dec. 7, 2001, entitled “Compression Fluid Strut,” which claims priority to U.S. provisional application Serial No. 60/251,951, filed Dec. 7, 2000, entitled “Compressible Fluid Strut,” both of which are hereby incorporated herein.