Claims
- 1. A magnetic pumping system, comprising:
a pump, capable of urging a fluid therefrom during a forward stroke and a return stroke, having a piston disposed within a cylinder defined by a pump body, and a driver disposed external to the pump body, wherein the driver is capable of moving the piston by a magnetic field interaction between the driver and the piston; and a check valve bridge, spaced away from the pump and in fluid communication with the cylinder, capable of allowing ingress and egress of the fluid into and out of the cylinder in response to a movement by the piston.
- 2. A magnetic pumping system, according to claim 1, wherein the pump body further comprises:
a cylinder wall defining the cylinder and having a first end and a second end; a first cylinder plug sealingly engaged with the first end of the cylinder wall and defining a bore therethrough in fluid communication with the cylinder and the check valve bridge; and a second cylinder plug sealingly engaged with the second end of the cylinder wall and defining a bore therethrough in fluid communication with the cylinder and the check valve bridge.
- 3. A magnetic pumping system, according to claim 2, wherein the pump body further comprises a pair of seals, disposed between the cylinder plugs and the cylinder wall, for inhibiting a flow of the fluid therebetween.
- 4. A magnetic pumping system, according to claim 3, wherein each of the pair of elastomeric seals comprise a material selected from the group consisting of an elastomer and a fluoroelastomer.
- 5. A magnetic pumping system, according to claim 1, wherein the piston further comprises:
a first piston plug; a second piston plug; a piston magnet disposed between the first piston plug and the second piston plug; a retaining member for housing the piston magnet and coupling the first piston plug and the second piston plug; and at least one piston seal disposed external to the retaining member for inhibiting a flow of fluid between the piston and the cylinder wall.
- 6. A magnetic pumping system, according to claim 5, wherein the piston further comprises a pair of seals, disposed between the piston plugs and the retaining member, for inhibiting a flow of the fluid therebetween.
- 7. A magnetic pumping system, according to claim 6, wherein each of the pair of elastomeric seals comprises a material selected from the group consisting of an elastomer and a fluoroelastomer.
- 8. A magnetic pumping system, according to claim 5, wherein each of the piston plugs comprise a ferromagnetic material.
- 9. A magnetic pumping system, according to claim 5, wherein the piston magnet comprises a material selected from the group consisting of an NeFeB alloy, an AlNiCo alloy, and an SmCo alloy.
- 10. A magnetic pumping system, according to claim 5, wherein the at least one piston seal comprises a fluoropolymer.
- 11. A magnetic pumping system, according to claim 1, wherein the driver further comprises:
a driver body; a pair of washers disposed within the driver body; and a driver magnet disposed within the driver body between the washers.
- 12. A magnetic pumping system, according to claim 11, wherein the driver magnet comprises a material selected from the group consisting of an NeFeB alloy, an AlNiCo alloy, and an SmCo alloy.
- 13. A magnetic pumping system, according to claim 11, wherein the driver magnet is magnetized in a direction generally perpendicular to the washers.
- 14. A magnetic pumping system, according to claim 1, further comprising a motor linked with the driver for actuating the driver.
- 15. A magnetic pumping system, according to claim 1, wherein the check valve bridge further comprises:
a first branch in fluid communication with a first portion of the cylinder for allowing ingress and egress of the fluid into and out of the first portion of the cylinder in response to the movement by the piston; and a second branch in fluid communication with a second portion of the cylinder for allowing ingress and egress of the fluid into and out of the second portion of the cylinder in response to the movement by the piston.
- 16. A magnetic pumping system, according to claim 15, wherein each of the first branch and the second branch comprises:
a first check valve capable of allowing ingress of the fluid into the cylinder in response to the movement by the piston; and a second check valve capable of allowing egress of the fluid out of the cylinder in response to the movement by the piston.
- 17. A magnetic pumping system, according to claim 15, wherein each of the first branch and the second branch further comprises:
a check valve body defining a first chamber in fluid communication with a second chamber; a first end cap sealingly engaged with a first end of the check valve body and defining a bore therethrough in fluid communication with the first chamber; a second end cap sealingly engaged with a second end of the check valve body and defining a bore therethrough in fluid communication with the second chamber; a first sealing member disposed within the first chamber proximate a sealing surface of the first end cap; a first spring member, disposed within the first chamber, for urging the first sealing member toward the sealing surface of the first end cap; a second sealing member disposed within the second chamber proximate a sealing surface of the check valve body; and a second spring member, disposed within the second chamber, for urging the second sealing member toward the sealing surface of the check valve body.
- 18. A magnetic pumping system, according to claim 17, wherein each of the first sealing member and the second sealing member comprises a fluoropolymer film.
- 19. A magnetic pumping system, according to claim 17, wherein each of the first spring member and the second spring member comprises a fibrous material portion.
- 20. A magnetic pumping system, according to claim 19, wherein the fibrous material portion comprises fibers curled in a direction generally perpendicular to the sealing member.
- 21. A magnetic pumping system, according to claim 17, wherein each of the first spring member and the second spring member comprises a portion of glass wool.
- 22. A magnetic pumping system, according to claim 21, wherein the glass wool portion comprises fibers curled in a direction generally perpendicular to the sealing member.
- 23. A magnetic pumping system, according to claim 17, wherein each of the first branch and the second branch further comprises a pair of seals, disposed between the end caps and the check valve body, for inhibiting a flow of the fluid therebetween.
- 24. A magnetic pumping system, according to claim 17, wherein each of the pair of elastomeric seals comprise a material selected from the group consisting of an elastomer and a fluoroelastomer.
- 25. A method for pumping a fluid, comprising:
magnetically moving a piston in a first direction within a cylinder; allowing ingress of a fluid into a first portion of the cylinder in response to the movement by the piston in the first direction; allowing egress of the fluid out of a second portion of the cylinder in response to the movement by the piston in the first direction; magnetically moving the piston in a second direction, which is counter to the first direction, within the cylinder; allowing egress of the fluid out of the first portion of the cylinder in response to the movement by the piston in the second direction; and allowing ingress of the fluid into the second portion of the cylinder in response to the movement by the piston in the second direction.
- 26. A method, according to claim 25, wherein:
allowing ingress of the fluid into the first portion of the cylinder further comprises opening a first check valve in response to the movement of the piston in the first direction so that the fluid may flow therethrough; allowing egress of the fluid out of the second portion of the cylinder further comprises opening a second check valve in response to the movement of the piston in the first direction so that the fluid may flow therethrough; allowing egress of the fluid out of the first portion of the cylinder further comprises opening a third check valve in response to the movement of the piston in the second direction so that the fluid may flow therethrough; and allowing ingress of the fluid into the second portion of the cylinder further comprises opening a fourth check valve in response to the movement of the piston in the second direction so that the fluid may flow therethrough.
- 27. A method, according to claim 25, further comprising:
selectively routing the fluid through a check valve of a check valve bridge based upon the direction of movement of the piston and a direction of flow of the fluid with respect to the cylinder so that the fluid may flow therethrough.
- 28. A method, according to claim 25, further comprising:
selectively opening a check valve of a check valve bridge based upon the direction of movement of the piston and a direction of flow of the fluid with respect to the cylinder so that the fluid may flow therethrough.
- 29. A method, according to claim 25, further comprising:
opening a first pair of check valves in response to the movement by the piston in the first direction so that the fluid may flow therethrough; and opening a second pair of check valves in response to the movement by the piston in the second direction so that the fluid may flow therethrough.
- 30. A apparatus for pumping a fluid, comprising:
means for magnetically moving a piston in a first direction within a cylinder; means for allowing ingress of a fluid into a first portion of the cylinder in response to the movement by the piston in the first direction; means for allowing egress of the fluid out of a second portion of the cylinder in response to the movement by the piston in the first direction; means for magnetically moving the piston in a second direction, which is counter to the first direction, within the cylinder; means for allowing egress of the fluid out of the first portion of the cylinder in response to the movement by the piston in the second direction; and means for allowing ingress of the fluid into the second portion of the cylinder in response to the movement by the piston in the second direction.
- 31. An apparatus, according to claim 30, wherein each of the means for allowing ingress or egress of the fluid into or out of the cylinder further comprises check valve means.
- 32. An apparatus, according to claim 30, wherein the means for allowing ingress of a fluid into a first portion of the cylinder, the means for allowing egress of the fluid out of a second portion of the cylinder, the means for allowing egress of the fluid out of the first portion of the cylinder, and the means for allowing ingress of the fluid into the second portion of the cylinder comprise check valve bridge means.
- 33. An apparatus, according to claim 30, wherein:
the means for allowing ingress of the fluid into the first portion of the cylinder further comprises first check valve means; the means for allowing egress of the fluid out of the second portion of the cylinder further comprises second check valve means; the means for allowing egress of the fluid out of the first portion of the cylinder further comprises third check valve means; and the means for allowing ingress of the fluid into the second portion of the cylinder further comprises fourth check valve means.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/315,416, filed Aug. 28, 2001.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] The U.S. Government has a paid-up license in this invention and the right in limited circumstances to require the patent owner to license others on reasonable terms as provided for by the terms of contract number DAAM01-98-C-0002 awarded by the U.S. Army Chemical and Biological Defense Command.
Provisional Applications (1)
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Number |
Date |
Country |
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60315416 |
Aug 2001 |
US |