Claims
- 1. A vapor-compression refrigeration cycle heat transfer device comprising:
a body defining a compressor cavity; a flexible compressor diaphragm mounted in the compressor cavity; an inlet conduit in fluid communication with a portion of the compressor cavity; an outlet conduit in fluid communication with the portion of the compressor cavity; a condenser having a flexible condenser diaphragm, the condenser diaphragm in fluid communication with the outlet conduit, the condenser diaphragm having a condenser surface; an expansion chamber in fluid communication with the condenser, the expansion chamber having a top end, a bottom end, and a wall surface extending between the top end and the bottom end, wherein the condenser surface forms a portion of the bottom end of the expansion chamber; and an evaporator chamber having a conductive member, the evaporator chamber proximate the top end of the expansion chamber and is in fluid communication with the expansion chamber and the inlet conduit; wherein movement of the compressor diaphragm pressurizes fluid within the portion of the compressor cavity and moves fluid through the portion of the compressor cavity, and wherein movement of the condenser diaphragm propels a plurality of condensed droplets from the condenser surface into the expansion chamber.
- 2. The device of claim 1, further comprising opposing capacitive compressor electrical contacts on the compressor cavity and the flexible compressor diaphragm.
- 3. The device of claim 2, wherein the opposing capacitive compressor electrical contacts comprise an upper compressor electrode and a lower compressor electrode, and wherein the compressor diaphragm is adapted to selectively deflect toward the upper and lower compressor electrodes.
- 4. The device of claim 3, wherein the upper and lower compressor electrodes are integral with a portion of the body that forms the compressor cavity.
- 5. The device of claim 3, wherein the compressor diaphragm is movable from a first position, in which the upper and lower compressor electrodes are deactivated and the compressor diaphragm is in an original position, to a second position, in which the upper and lower compressor electrodes are activated to move the compressor diaphragm toward the upper compressor electrode to maximize a volume of the portion of the compressor cavity, to a third position, in which the upper and lower compressor electrodes are activated to move the compressor diaphragm toward the lower compressor electrode to minimize the volume of the portion of the compressor cavity and to thereby pressurize fluid within the portion of the compressor cavity.
- 6. The device of claim 2, wherein the compressor diaphragm is formed of a polymeric material having elastomeric properties.
- 7. The device of claim 1, further comprising a thin film of a piezoelectric material mounted on the condenser diaphragm.
- 8. The device of claim 7, wherein the condenser diaphragm has a base surface that is opposite the condenser surface, wherein the condenser diaphragm is movable from a first position, in which the condenser diaphragm is substantially planar and the plurality of droplets are allowed to condense on the condenser surface, to a second position, in which the piezoelectric material is energized and the condenser diaphragm is bowed outward relative to the base surface such that the condensed droplets are propelled from the condenser surface toward the top end of the expansion chamber.
- 9. The device of claim 1, wherein the inlet conduit defines an inlet wall surface and the outlet conduit defines an outlet wall surface, further comprising a first compressor valve and a second compressor valve, each compressor valve having a sealing edge, wherein the first compressor valve is located within the inlet conduit, the first compressor valve moveable from a closed position, in which the sealing edge of the first compressor valve is sealed to a first portion of the inlet wall surface to prevent flow of fluid from the evaporator chamber through the inlet conduit and into the portion of the compressor cavity, to an open position, in which the sealing edge of the first compressor valve is drawn away from the first portion of the inlet wall surface toward a second portion of the inlet wall surface to allow flow of fluid through the inlet conduit and into the portion of the electrode cavity, and wherein the second compressor valve is located within the outlet conduit, the second compressor valve moveable from a closed position, in which the sealing edge of the second compressor valve is sealed to a first portion of the outlet wall surface to prevent flow of fluid out of the outlet conduit and into the condenser, to an open position, in which the sealing edge of the second compressor valve is drawn away from the first portion of the outlet wall surface toward a second portion of the outlet wall surface to allow flow of fluid out of the outlet conduit and into the condenser.
- 10. The device of claim 9, wherein each of the first and second compressor valves comprises a tab movable toward and away from the respective first and second portions of the respective inlet and outlet wall surfaces.
- 11. The device of claim 10, wherein each compressor valve further comprises opposing capacitive compressor valve electrical contacts on the tab and the second portions of the respective inlet and outlet wall surfaces.
- 12. The device of claim 11, wherein the opposing capacitive compressor valve electrical contacts for each of the first and second compressor valves comprise a first compressor valve electrode encapsulated within the tab, a second compressor valve electrode proximate the second portions of the respective inlet and outlet wall surfaces, wherein the first and second compressor valve electrodes are selectively energized so that the tab is electrostatically positioned in the open or closed position.
- 13. The device of claim 12, wherein the second electrode is integral with the body.
- 14. The device of claim 10, wherein the tab is substantially rigid.
- 15. The device of claim 10, wherein the tab is formed from a polymeric material having elastomeric properties.
- 16. The device of claim 1, wherein the condenser further comprises a heat exchanger means for cooling the condenser surface.
- 17. The device of claim 16, wherein the heat exchanger means comprises a heat-rejecting heat exchanger proximally bounding the condenser surface.
- 18. The device of claim 16, further comprising a housing, and wherein the heat exchanger means comprises:
a. a finned heat exchanger disposed on an exterior surface of the housing; b. a fluid channel defining a flow path between the heat exchanger and proximate the base surface of the condenser diaphragm; and c. a fluid pump disposed in the fluid channel so that fluid is circulated therethrough.
- 19. The device of claim 18, wherein the fluid pump comprises a piezoelectric fluid pump.
- 20. The device of claim 1, wherein the expansion chamber has a longitudinal axis, wherein at least a portion of the wall surface proximate the top end of the expansion chamber extends outwardly away from the longitudinal axis of the expansion chamber, and wherein the top end has a first width that is greater than a second width of width of the expansion chamber taken proximate the bottom end.
- 21. The device of claim 1, further comprising at least one expansion valve connected to the wall surface of the expansion chamber intermediate the top end and the bottom end of the expansion chamber.
- 22. The device of claim 21, comprising a first expansion valve and an opposing second expansion valve, each of the first and second expansion valves having a distal end, the first and second expansion valve moveable from a closed position, in which the distal ends of the first and second expansion valves are sealed to one another to define a cavity bounding the condenser diaphragm, to an open position, in which the distal ends of the first and second expansion valves are drawn toward the wall surface of the expansion chamber so that the condensed droplets may flow through the expansion chamber.
- 23. The device of claim 22, wherein each of the first and second expansion valves comprises a tab movable toward and away from the wall surface of the expansion chamber.
- 24. The device of claim 23, wherein each expansion valve further comprises opposing capacitive expansion valve electrical contacts on the tab and a portion of the wall surface of the expansion chamber adapted to selectively move one of the respective first and second expansion valves.
- 25. The device of claim 24, wherein the opposing capacitive expansion valve electrical contacts for each of the first and second expansion valves comprise a first expansion valve electrode encapsulated within the tab and a second expansion valve electrode proximate the wall surface of the expansion chamber, wherein the first and second expansion valve electrodes are selectively energized so that the tab is electrostatically positioned in the open or closed position.
- 26. The device of claim 25, wherein the second expansion valve electrode is integral with the body.
- 27. The device of claim 23, wherein the tab is substantially rigid.
- 28. The device of claim 23, wherein the tab is formed from a polymeric material having elastomeric properties.
- 29. A vapor-compression refrigeration cycle heat transfer device comprising:
a body defining a compressor cavity; a flexible compressor diaphragm mounted in the compressor cavity; an inlet conduit in fluid communication with a portion of the compressor cavity; a first electrostatic compressor valve disposed within the inlet conduit; an outlet conduit in fluid communication with the portion of the compressor cavity; a second electrostatic compressor valve disposed within the outlet conduit; a condenser having a flexible piezoelectric condenser diaphragm, the condenser diaphragm having a condenser surface and in fluid communication with the outlet conduit; an expansion chamber in fluid communication with the condenser, the expansion chamber having a top end, a bottom end, and a wall surface extending between the top end and the bottom end, wherein the condenser surface forms a portion of the bottom end of the expansion chamber; an evaporator chamber having a conductive member, the evaporator chamber proximate the top end of the expansion chamber and in fluid communication with the expansion chamber and the inlet conduit; wherein movement of the compressor diaphragm pressurizes fluid within the portion of the compressor cavity and moves fluid through the portion of the compressor cavity, and whereby movement of the condenser diaphragm propels a plurality of condensed droplets from the condenser surface into the expansion chamber.
- 30. The device of claim 29, wherein the inlet conduit defines an inlet wall surface and the outlet conduit defines an outlet wall surface, wherein each compressor valve has a sealing edge, wherein the first compressor valve is moveable from a closed position, in which the sealing edge of the first compressor valve is sealed to a first portion of the inlet wall surface to prevent flow of fluid from the evaporator chamber through the inlet conduit and into the portion of the compressor cavity, to an open position, in which the sealing edge of the first compressor valve is drawn away from the first portion of the inlet wall surface toward a second portion of the inlet wall surface to allow flow of fluid through the inlet conduit and into the portion of the electrode cavity, and wherein the second compressor valve is moveable from a closed position, in which the sealing edge of the second compressor valve is sealed to a first portion of the outlet wall surface to prevent flow of fluid out of the outlet conduit and into the condenser, to an open position, in which the sealing edge of the second compressor valve is drawn away from the first portion of the outlet wall surface toward a second portion of the outlet wall surface to allow flow of fluid out of the outlet conduit and into the condenser.
- 31. The device of claim 29, further comprising a first electrostatic expansion valve and an opposing second electrostatic expansion valve, each expansion valve connected to the wall surface of the expansion chamber intermediate the top end and the bottom end.
- 32. The device of claim 31, wherein each of the first and second expansion valves has a distal end, and wherein the first and second expansion valves are moveable from a closed position, in which the distal ends of the fist and second expansion valves are sealed to one another to define a cavity bounding the condenser diaphragm, to an open position, in which the distal ends of the first and second expansion valves are drawn toward the wall surface of the expansion chamber so that the condensed droplets may flow through the expansion chamber.
Parent Case Info
[0001] This application claims priority to the U.S. provisional application 60/209,335, filed Jun. 2, 2000, which is incorporated herein in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60209335 |
Jun 2000 |
US |