Claims
- 1. A valve, comprising:
a housing defining a volume and having an inlet and an outlet in fluid communication with the volume; a coil disposed in the volume proximate the outlet; a stator disposed in the volume proximate the outlet, the stator having a first surface; an armature disposed in the coil, the armature having a second surface proximate the first surface of the stator and defining a gap therebetween, the armature movable to an open position permitting fluid flow through the volume in response to an energization of the coil; a biasing member disposed between the stator and the armature, the biasing member urging the armature to a closed position prohibiting fluid flow through the volume; and an elastomeric contact member disposed in the gap, the member maintaining continuous contact with the first and second surfaces during an entire movement of the armature between the open and closed positions.
- 2. The valve according to claim 1, wherein the biasing member comprises a coil spring.
- 3. The valve according to claim 2, wherein the spring engages a face of the armature.
- 4. The valve according to claim 3, wherein the face of the armature engaged by the spring comprises the second surface of the armature.
- 5. The valve according to claim 4, wherein the spring engages a support portion of the stator.
- 6. The valve according to claim 5, wherein the support portion of the stator comprises a surface separate from the first surface of the stator.
- 7. The valve according to claim 1, further comprising:
a seat in fluid communication with the inlet.
- 8. The valve according to claim 7, wherein the armature further includes an inlet surface adapted to prohibit fluid flow through the seat when the armature is in the closed position.
- 9. The valve according to claim 8, wherein the inlet surface of the armature comprises a molded rubber insert.
- 10. The valve according to claim 1, wherein the housing comprises an upper housing, a lower housing, and a housing sealing member disposed between the upper and lower housing.
- 11. The valve according to claim 10, further comprising:
a seat in fluid communication with the inlet; and a seat sealing member disposed between the seat and the lower housing to prohibit fluid flow therebetween.
- 12. The valve according to claim 11, wherein the housing further comprises a weld between the upper and lower housing.
- 13. A method of maintaining an increase in flow rate for an increase in duty cycle in a system having a housing defining a volume, the system having a coil, a stator, and an armature disposed in the volume, comprising:
energizing the coil to attract the armature towards the stator; and maintaining continuous contact between the armature and the stator with a compressible member during energization and deenergization of the coil.
- 14. The method according to claim 13, wherein the maintaining further comprises maintaining continuous contact between the armature and the stator with the compressible member during energization and deenergization of the coil to provide an increase in a flow rate through the volume.
- 15. The method according to claim 14, wherein the maintaining further comprises maintaining continuous contact between the armature and the stator with an elastomeric compressible member during energization and deenergization of the coil.
- 16. The method according to claim 13, wherein the maintaining further comprises maintaining continuous contact between the armature and the stator with the compressible member during energization and deenergization of the coil to provide a linear increase in a flow rate through the volume.
- 17. The method according to claim 13, further comprising:
maintaining an increase in a flow rate through the volume for an increased power level to the coil.
- 18. The method according to claim 13, further comprising:
disposing a biasing member between the armature and the stator, the biasing member urging the armature away from the stator.
- 19. A method of maintaining an increase in flow rate through a valve defining a void, the valve including a coil, a stator, and an armature disposed in the void, comprising:
energizing the coil to attract the armature towards the stator and permit flow through the valve; and deforming a compressible member between the armature and the stator to provide an increase in a flow rate through the valve.
- 20. The method according to claim 19, wherein the deforming comprises deforming the compressible member between the armature and the stator to provide a linear increase in the flow rate through the valve.
- 21. The method according to claim 20, wherein the deforming comprises deforming the compressible member between the armature and the stator to provide the increase in the flow rate through the valve for an increased power level to the coil.
- 22. The method according to claim 19, further comprising:
disposing a biasing member between the armature and the stator, the biasing member urging the armature away from the stator.
CLAIM FOR PRIORITY
[0001] This application claims the benefit of the earlier filing dates of U.S. and Provisional Applications No. 60/225,069 (entitled “Armature Design for a Canister Purge Solenoid”, Attorney Docket No. 00P7826US, filed Aug. 14, 2000), which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
|
60225069 |
Aug 2000 |
US |