Claims
- 1. A thermal machine comprising:
- a positive displacement element which oscillates at a damped resonant frequency;
- means for defining expander and compressor subchambers having volumes controlled by the positive displacement element;
- heat exchange means including a high temperature heat source, a low temperature heat source, and at least one heat sink;
- valve means for controlling the flow of fluid into and out of the expander subchamber so that said subchamber expands fluid therein;
- means for compressing a fluid;
- a first working fluid cycled in series through the expander subchamber, one of said heat sinks, the compressing means, the high temperature heat source and back to the expander subchamber to subject the first working fluid to a thermodynamic cycle comprising expansion, cooling, compression and heating steps;
- means for expanding a fluid; and
- a second working fluid cycled in series through the compressor subchamber, one of said heat sinks, the expanding means, the low temperature heat source and back to the compressor subchamber to subject said second working fluid to a thermodynamic cycle comprising compression, cooling, expansion and heating steps.
- 2. A thermal machine as recited in claim 1 wherein the defining means comprises a chamber, and wherein the positive displacement element oscillates within said chamber to divide the opposite ends of said chamber into expander and compressor subchambers respectively.
- 3. A thermal machine as recited in claim 1 and additionally comprising a regenerator, and wherein the first working fluid is cycled through the regenerator between the expander subchamber and its associated heat sink, and between the compressing means and the high temperature heat source.
- 4. A thermal machine as recited in claim 1 wherein the compressing means comprises a pump.
- 5. A thermal machine as recited in claim 1 wherein said compressing means and said expanding means jointly comprise a housing, and a free-floating piston which oscillates in said housing at a damped resonant frequency and divides the interior volume of the housing into expansion and compression subchambers providing expanding and compressing means respectively.
- 6. A thermal machine as recited in claim 1 wherein the expanding means comprises an expansion valve.
- 7. A thermal machine as recited in claim 1 wherein the expanding means drives the compressing means.
- 8. A thermal machine as recited in claim 1 wherein the defining means comprises a cylinder having an enlarged center portion and smaller end portions, and wherein the positive displacement element is a piston having an enlarged center portion and smaller end portions conformed to the dimensions of the cylinder.
- 9. A thermal machine as recited in claim 8 wherein the end portions of the cylinder have the same cross-sectional area.
- 10. A thermal machine as recited in claim 8 wherein the small chambers defined by the small ends of the piston and the large center portion of the cylinder control the valve means.
- 11. A thermal machine as recited in claim 8 wherein the small chambers defined by the ends of the piston and the center of the cylinder are gas spring chambers to provide a spring force for the resonant oscillation of the positive displacement element.
- 12. A thermal machine comprising:
- a housing;
- a positive displacement element which oscillates within the housing and divides the interior volume of the housing into expander and compressor subchambers;
- valve means controlling influx and eflux to the expander subchamber so that said expander subchamber expands fluid therein;
- heat exchange means including a high temperature heat source, a low temperature heat source, and at least one heat sink;
- a pump having compression and expansion components, the expansion component driving the compression component;
- a first working fluid recycled in series through the high temperature heat source, the expander subchamber, one of the heat sinks, the compression component of the pump and back to the high temperature heat source to subject the first working fluid to a thermodynamic cycle comprising expansion, cooling, compression and heating steps; and
- a second working fluid cycled in series through the compressor subchamber, one of said heat sinks, the expansion component of the pump, the low temperature heat source and back to the compressor subchamber to subject said second working fluid to a thermodynamic cycle comprising compression, cooling, expansion and heating steps.
- 13. A thermal machine as recited in claim 12 wherein the pump includes a pump housing, and a positive displacement pump element which oscillates within the pump housing and divides the interior volume of the housing into compression and expansion subchambers.
- 14. A thermal machine as recited in claim 12 wherein the pump includes an electrical generator powered by the expansion component, and an electrically powered pumping unit driving the compression component using the power supplied by the generator.
- 15. A thermal machine as recited in claim 12 and additionally comprising a bypass valve allowing a controlled portion of the first working fluid to bypass the pump to provide a throttle control.
- 16. A thermal machine as recited in claim 1 or 12 and additionally comprising means for deriving work output from the movement of the positive displacement element.
- 17. A thermal machine as recited in claim 16 wherein said deriving means comprises a linear electric machine circumscribing the positive displacement element.
- 18. A thermal machine as recited in claim 1 or 12 wherein said positive displacement element has variable displacement.
- 19. A thermal machine as recited in claim 1 or 12 wherein the valve means is adjustable to vary the expansion step of the thermodynamic cycle of the first working fluid.
- 20. A thermal machine comprising:
- a pair of positive displacement elements which oscillate at a damped resonant frequency;
- means for defining a first and second pair of expander and compressor subchambers having volumes controlled by the respective positive displacement elements;
- heat exchange means including a high temperature heat source, a low temperature heat source, and a heat sink;
- valve means for controlling the flow of fluid into and out of the expander subchambers so that said subchambers expand the fluid therein;
- a first working fluid cycled in series through the first expander subchamber, the heat sink, the second compressor subchamber, the high temperature heat source and back to the first expander subchamber to subject the first working fluid to a thermodynamic cycle comprising expansion, cooling, compression and heating steps; and
- a second working fluid cycled in series through the first compressor subchamber, the heat sink, the second expander subchamber, the low temperature heat source and back to the first compressor subchamber to subject said second working fluid to a thermodynamic cycle comprising compression, cooling, expansion and heating steps.
- 21. A thermal machine as recited in claim 1, 12 or 20 wherein the first and second working fluids are identical.
- 22. A thermal machine as recited in claim 21 and including means for allowing limited fluid communication of the first and second working fluids between the expander and compressor subchambers.
- 23. A thermal machine as recited in claim 1, 12 or 20 wherein the working fluids lubricate the positive displacement elements.
- 24. A thermal machine as recited in claim 1, 12 or 20 wherein the first and second working fluids are different from one another.
- 25. A thermal machine as recited in claims 1, 12 or 20 wherein the working fluids at least partially liquify during portions of their cycles.
- 26. A method for obtaining work output and pumping heat comprising the steps of:
- subjecting a first working fluid to a thermodynamic cycle including, in series, heating the first working fluid at a substantially constant pressure, expanding the heated fluid in a valved positive displacement expander, cooling the fluid at a substantially constant pressure to a prescribed temperature, compressing the cooled fluid, and heating the fluid at a substantially constant pressure; and
- subjecting a second working fluid to a thermodynamic cycle comprising, in series, compressing the second working fluid in a valved positive displacement compressor driven by the work produced by the expansion of the first working fluid, cooling the compressed fluid at a substantially constant pressure, expanding the fluid, and heating the fluid at a substantially constant pressure,
- whereby work can be obtaind from the movement of the expander and heat pump effect obtained from the cooling portions of the cycles.
- 27. A method as recited in claim 26 and additionally comprising the step of deriving work output from the movement of the positive displacement expander.
- 28. A method as recited in claim 26 and additionally comprising the steps of deriving work output from the expanding of the second working fluid.
- 29. A method as recited in claim 26 wherein expanding the second working fluid includes driving a pump to compress the first working fluid.
Parent Case Info
This application is a continuation-in-part of my prior application entitled "RANKINE/RANKINE HEAT PUMP", Ser. No. 937,902 filed Aug. 29, 1978, now abandoned.
US Referenced Citations (4)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
937902 |
Aug 1978 |
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