Claims
- 1. A heat pump system comprising:
a hydristor comprising a first compressor half, a second expander half, a first inlet, a second inlet, a first outlet, and a second outlet wherein said first inlet and said first outlet fluidly communicate with said first compressor half and said second inlet and said second outlet fluidly communicate with said second expander half; a closed compressible fluid loop integral with and in fluid communication with said hydristor, said closed compressible fluid loop containing a first closed half loop and a second closed half loop, said first closed half loop in fluid communication with said first inlet and said second outlet, and, said second closed half loop in fluid communication with said first outlet and said second inlet; a compressible fluid contained within said closed compressible fluid loop; a first heat exchanger integral to and in fluid communication with said first closed half loop wherein said first heat exchanger provides heat to said compressible fluid; and a second heat exchanger fluidly communicating with and connected in line to said second closed half loop wherein said second heat exchanger transfers or draws heat from said compressible fluid, wherein during operation of said heat pump system, the compressible fluid passes through said first inlet and is compressed and then exits said first outlet into the second closed half loop, then through the second heat exchanger wherein heat is transferred to a relatively cold reservoir in thermodynamic communication therewith, then into the second closed half loop, then into the second inlet and is expanded, and then exits the second outlet, then into the first closed half loop, then into the first heat exchanger wherein heat is transferred to the compressible fluid, then into the first closed loop, thereby completing one pump cycle.
- 2. A heat pump system comprising:
an hydristor comprising a first compressor half, a second expander half, a first inlet, a second inlet, a first outlet, and a second outlet wherein said first inlet and said first outlet fluidly communicate with said first compressor half and said second inlet and said second outlet fluidly communicate with said second expander half; a closed compressible fluid loop integral with and in fluid communication with said hydristor, said closed compressible fluid loop containing a first closed half loop and a second closed half loop, said first closed half loop in fluid communication with said first inlet and said second outlet, and, said second closed half loop in fluid communication with said first outlet and said second inlet; a compressible fluid contained within said closed compressible fluid loop; a first heat exchanger integral to and in fluid communication with said first closed half loop wherein said first heat exchanger provides heat to said compressible fluid; a second heat exchanger fluidly communicating with and connected in line to said second closed half loop wherein said second heat exchanger transfers or draws heat from said compressible fluid; and a Stirling engine thermodynamically communicating with said second heat exchanger and accepting heat therefrom, wherein during operation of said heat pump system, the compressible fluid passes through said first inlet and is compressed and then exits said first outlet into the second closed half loop, then through the second heat exchanger wherein heat is transferred to said Stirling engine, then into the second closed half loop, then into the second inlet and is expanded, then exits the second outlet, then into the first closed half loop, then into the first heat exchanger wherein heat is transferred to the compressible fluid, then into the first closed loop, thereby completing one pump cycle.
- 3. The heat pump system of claim 1 wherein said compressible fluid is freon and said freon is compressed to a liquid at about 300° F., then cooled by said second heat exchanger to about 140° F., then expanded to a rarified gas at about −40° F., then warmed by said first heat exchanger to about −10° F.
- 4. The heat pump system of claim 2 wherein said compressible fluid is freon and said freon is compressed to a liquid at about 300° F., then cooled by said second heat exchanger to about 140° F., then expanded to a rarified gas at about −40° F., then warmed by said first heat exchanger to about −10° F.
- 5. A heat pump system comprising:
an hydristor comprising a housing including an outer casing with a longitudinal axis and a pair of end plates enclosing the outer casing, a rotor with a plurality of radially extensible vanes within said housing, and means supporting the rotor for rotation about said longitudinal axis relative to the outer casing; a flexible band within said housing surrounding said rotor and in contact with an outer portion of each of said extensible vanes creating a fluid chamber; a plurality of individually controlled shape means abutting said flexible band and spaced around the circumference of said outer casing for controlling the shape of said flexible band; and at least two pairs of passageways in communication with said fluid chamber wherein a first pair comprises a first inlet and a first outlet and a second pair comprises a second inlet and a second outlet, each pair of said passageways extending through one of said end plates, wherein said rotor and said extensible vanes upon rotation about said longitudinal axis results in differential fluid flows between said two pairs of said passageways according to a selected shape of said flexible band, and, said hydristor comprises a first compressor half and a second expander half, such that said first inlet and said first outlet fluidly communicate with said first compressor half and said second inlet and said second outlet fluidly communicate with said second expander half; a closed compressible fluid loop integral with and in fluid communication with said hydristor, said closed compressible fluid loop containing a first closed half loop and a second closed half loop, said first closed half loop in fluid communication with said first inlet and said second outlet, and, said second closed half loop in fluid communication with said first outlet and said second inlet; a compressible fluid contained within said closed compressible fluid loop; a first heat exchanger integral to and in fluid communication with said first closed half loop wherein said first heat exchanger provides heat to said compressible fluid; and a second heat exchanger fluidly communicating with and connected in line to said second closed half loop wherein said second heat exchanger transfers or draws heat from said compressible fluid, wherein during operation of said heat pump system, the compressible fluid passes through said first inlet and is compressed and then exits said first outlet into the second closed half loop, then through the second heat exchanger wherein heat is transferred to a relatively cold reservoir in thermodynamic communication therewith, then into the second closed half loop, then into the second inlet and is expanded, then exits the second outlet, then into the first closed half loop, then into the first heat exchanger wherein heat is transferred to the compressible fluid, then into the first closed loop, thereby completing one pump cycle.
- 6. The system of claim 5 wherein each shape means includes a piston and means to vary a pressure against said piston to effect movement of each shape means and corresponding reshaping of said flexible band.
- 7. The system according to claim 6 wherein the means to vary pressure against said piston is mechanical.
- 8. The system according to claim 6 wherein the means to vary pressure against said piston include means to apply pressurized fluid.
- 9. The system according to claim 5 wherein at least one of said individually controlled shape means is a piston controlled by an externally controlled rack and pinion means.
- 10. The system according to claim 5 wherein at least one of said individually controlled shape means is a piston controlled by an externally controlled lever mechanism.
- 11. The system according to claim 5 wherein at least one of said individually controlled shape means is a piston controlled by an externally controlled cam in linear or nonlinear communication with a cam roller fixed to said piston.
- 12. The system according to claim 5 wherein at least one of said individually controlled shape means is a piston controlled by an externally controlled crankshaft.
- 13. The system according to claim 5 wherein at least one of said individually controlled shape means is a piston controlled by an externally controlled screw threadedly received by an axial bore within said piston.
- 14. The system according to claim 5 wherein at least one of said individually controlled shape means is a piston controlled by a servomechanical means.
- 15. The system according to claim 5 wherein said plurality of individually controlled shape means is a piston controlled by an externally controlled lever mechanism.
- 16. A heat pump system comprising:
an hydristor comprising a housing including an outer casing with a longitudinal axis and a pair of end plates enclosing the outer casing, a rotor with a plurality of radially extensible vanes within said housing, and means supporting the rotor for rotation about said longitudinal axis relative to the outer casing; a flexible band within said housing surrounding said rotor and in contact with an outer portion of each of said extensible vanes creating a fluid chamber; a plurality of individually controlled shape means abutting said flexible band and spaced around the circumference of said outer casing for controlling the shape of said flexible band; and at least two pairs of passageways in communication with said fluid chamber wherein a first pair comprises a first inlet and a first outlet and a second pair comprises a second inlet and a second outlet, each pair of said passageways extending through one of said end plates, wherein said rotor and said extensible vanes upon rotation about said longitudinal axis results in differential fluid flows between said two pairs of said passageways according to a selected shape of said flexible band, and, said hydristor comprises a first compressor half and a second expander half, such that said first inlet and said first outlet fluidly communicate with said first compressor half and said second inlet and said second outlet fluidly communicate with said second expander half; a closed compressible fluid loop integral with and in fluid communication with said hydristor, said closed compressible fluid loop containing a first closed half loop and a second closed half loop, said first closed half loop in fluid communication with said first inlet and said second outlet, and, said second closed half loop in fluid communication with said first outlet and said second inlet; a compressible fluid contained within said closed compressible fluid loop; a first heat exchanger integral to and in fluid communication with said first closed half loop wherein said first heat exchanger provides heat to said compressible fluid; a second heat exchanger fluidly communicating with and connected in line to said second closed half loop wherein said second heat exchanger transfers or draws heat from said compressible fluid; and a Stirling engine thermodynamically communicating with said second heat exchanger and accepting heat therefrom, wherein during operation of said heat pump system, the compressible fluid passes through said first inlet and is compressed and then exits said first outlet into the second closed half loop, then through the second heat exchanger wherein heat is transferred to said Stirling engine, then into the second closed half loop, then into the second inlet and is expanded, then exits the second outlet, then into the first closed half loop, then into the first heat exchanger wherein heat is transferred to the compressible fluid, then into the first closed loop, thereby completing one pump cycle.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/270,005 filed Feb. 20, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60270005 |
Feb 2001 |
US |