Claims
- 1. A thermoacoustic device comprising:
an inlet port adapted to admit a compressible inlet fluid, the compressible inlet fluid comprising an oxidizer; a fuel injector adapted to provide fuel; a mixing section adapted to receive the compressible inlet fluid from the inlet port, the mixing section further being adapted to receive the fuel from the fuel injector, the mixing section further being adapted to mix the fuel and the compressible inlet fluid to produce a compressible combustible mixture; a combustion zone configured to receive the compressible combustible mixture, the combustion zone further being configured to bum the compressible combustible mixture to generate hot compressible combustion products; a cold heat exchanger; a regenerator coupled to the combustion zone, the regenerator having a cold side and a hot side, the cold side and the hot side being configured to generate a temperature gradient across the regenerator, the cold side of the regenerator being coupled to the cold heat exchanger, the hot compressible combustion products from the combustion zone being directed to the hot side of the regenerator, the hot compressible combustion products further being directed through the regenerator to produce cold compressible combustion products, the regenerator further being configured to amplify an acoustic traveling wave propagating from the cold side of the regenerator to the hot side through the regenerator; and an exhaust port adapted to expel the cold compressible combustion products.
- 2. The thermoacoustic device of claim 1, wherein the combustion zone is further configured employ a pulse combustion process in which the burning of the compressible combustible mixture is done in a pulsating manner, the pulsed burning of the compressible combustible mixture being phased to the pressure oscillations of the acoustic traveling wave to amplify the pressure oscillations of the acoustic traveling wave.
- 3. The thermoacoustic device of claim 1, wherein the combustion zone is further configured employ a catalyst to facilitate burning of the compressible combustible mixture.
- 4. The thermoacoustic device of claim 1, further comprising:
a feedback path configured to direct a portion of the acoustic traveling wave from the hot side of the regenerator to the cold side of the regenerator.
- 5. The thermoacoustic device of claim 4, further comprising:
an acoustically transparent barrier adapted to direct the compressible combustible mixture to the combustion zone, the acoustically transparent barrier further being adapted to direct the compressible combustion products through the regenerator.
- 6. The thermoacoustic device of claim 4, further comprising:
a compliance section located within the feedback path; and an inertance section located within the feedback path, the inertance section being coupled to the compliance section, the inertance section together with the compliance section being configured to define properties of the acoustic traveling wave.
- 7. The thermoacoustic device of claim 6, wherein the volume of the compliance section is adjustable to adjust the properties of the acoustic traveling wave.
- 8. The thermoacoustic device of claim 6, wherein the inertance section is configured to direct a flow of the compressible inlet fluid, the compressible inlet fluid being directed toward the combustion zone.
- 9. The thermoacoustic device of claim 8, wherein the inertance section is located in close proximity to the regenerator to permit heat transfer between the regenerator and the inertance section.
- 10. The thermoacoustic device of claim 9, wherein the inertance section is configured as an annulus surrounding the regenerator.
- 11. The thermoacoustic device of claim 9, wherein the regenerator is configured as an annulus surrounding the inertance section.
- 12. The thermoacoustic device of claim 8, wherein the inertance section is located in close proximity to the combustion zone to permit heat transfer between the combustion zone and the inertance section.
- 13. The thermoacoustic device of claim 12, wherein the inertance section is configured as an annulus surrounding the combustion zone.
- 14. A thermoacoustic device comprising:
an inlet port adapted to admit a compressible combustible mixture; a combustion zone configured to receive the compressible combustible mixture, the combustion zone further being configured to burn the compressible combustible mixture to generate hot compressible combustion products; a cold heat exchanger; a regenerator coupled to the combustion zone, the regenerator having a cold side and a hot side, the cold side and the hot side being configured to generate a temperature gradient across the regenerator, the cold side of the regenerator being coupled to the cold heat exchanger, the hot compressible combustion products from the combustion zone being directed to the hot side of the regenerator, the hot compressible combustion products further being directed through the regenerator to produce cold compressible combustion products, the regenerator further being configured to amplify an acoustic traveling wave propagating from the cold side of the regenerator to the hot side through the regenerator; and an exhaust port adapted to expel the cold compressible combustion products.
- 15. The thermoacoustic device of claim 14, wherein the combustion zone is further configured employ a pulse combustion process in which the burning of the compressible combustible mixture is done in a pulsating manner, the pulsed burning of the compressible combustible mixture being phased to the pressure oscillations of the acoustic traveling wave to amplify the pressure oscillations of the acoustic traveling wave.
- 16. The thermoacoustic device of claim 14, wherein the combustion zone is further configured employ a catalyst to facilitate burning of the compressible combustible mixture.
- 17. The thermoacoustic device of claim 15, further comprising:
a sensor adapted to detect the pressure oscillations of the acoustic traveling wave; and a controller adapted to regulate the burning of the compressible combustible mixture within the combustion zone in response to the detected pressure oscillations.
- 18. The thermoacoustic device of claim 14, further comprising:
means for directing a portion of the acoustic traveling wave from the hot side of the regenerator to the cold side of the regenerator.
- 19. The thermoacoustic device of claim 14, further comprising:
a feedback path configured to direct a portion of the acoustic traveling wave from the hot side of the regenerator to the cold side of the regenerator.
- 20. The thermoacoustic device of claim 19, further comprising:
an acoustically transparent barrier adapted to direct the compressible combustible mixture to the combustion zone, the acoustically transparent barrier further being adapted to direct the compressible combustion products through the regenerator.
- 21. The thermoacoustic device of claim 20, wherein the acoustically transparent barrier is a flexible membrane.
- 22. The thermoacoustic device of claim 20, wherein the acoustically transparent barrier is a hydrodynamic jet pump.
- 23. The thermoacoustic device of claim 20, wherein the acoustically transparent barrier is a piston.
- 24. The thermoacoustic device of claim 19, further comprising:
a compliance section located within the feedback path; and an inertance section located within the feedback path, the inertance section being coupled to the compliance section, the inertance section together with the compliance section being configured to define properties of the acoustic traveling wave.
- 25. The thermoacoustic device of claim 24, wherein the volume of the compliance section is adjustable to adjust the properties of the acoustic traveling wave.
- 26. The thermoacoustic device of claim 24, wherein the inertance section is configured to direct a flow of the compressible inlet fluid, the compressible inlet fluid being directed toward the combustion zone.
- 27. The thermoacoustic device of claim 26, wherein the inertance section is located in close proximity to the regenerator to permit heat transfer between the regenerator and the inertance section.
- 28. The thermoacoustic device of claim 27, wherein the inertance section is configured as an annulus surrounding the regenerator.
- 29. The thermoacoustic device of claim 27, wherein the regenerator is configured as an annulus surrounding the inertance section.
- 30. The thermoacoustic device of claim 26, wherein the inertance section is located in close proximity to the combustion zone to permit heat transfer between the combustion zone and the inertance section.
- 31. The thermoacoustic device of claim 30, wherein the inertance section is configured as an annulus surrounding the combustion zone.
- 32. A method for amplifying acoustic energy, the method comprising:
burning a combustible mixture to generate hot compressible combustion products; cooling a cold side of a regenerator; heating a hot side of the regenerator by directing the hot compressible combustion products to the hot side of the regenerator, the heating of the hot side of the regenerator and the cooling of the cold side of the regenerator resulting in a temperature gradient across the regenerator; directing the hot compressible combustion products through the regenerator from the hot side of the regenerator to the cold side of the regenerator to produce cold compressible combustion products; expelling the cold compressible combustion products; and propagating an acoustic traveling wave through the regenerator from a cold side of the regenerator to a hot side of the regenerator to amplify the acoustic traveling wave.
- 33. The method of claim 32, further comprising:
transferring heat from the regenerator to surrounding compressible fluid to heat the surrounding compressible fluid.
- 34. The method of claim 32, further comprising:
transferring the heat from the hot compressible combustion products to surrounding compressible fluid to heat the surrounding compressible fluid.
- 35. The method of claim 32, wherein the burning of the compressible combustible mixture comprises:
providing fuel; mixing the fuel with an oxidizer to generate the compressible combustible mixture.
- 36. The method of claim 32, wherein the burning of the compressible combustible mixture comprises:
providing a catalyst to facilitate the burning of the compressible combustible mixture.
- 37. The method of claim 32, wherein the burning of the compressible combustible mixture comprises:
pulsing the burning of the compressible combustible mixture, the pulsed burning being in phase with oscillations of an acoustic traveling wave.
- 38. The method of claim 37, wherein pulsing the burning of the compressible combustible mixture comprises:
actively controlling the pulsed burning.
- 39. The method of claim 37, wherein pulsing the burning of the compressible combustible mixture comprises:
passively controlling the pulsed burning.
- 40. The method of claim 32, further comprising:
liquefying natural gas using the amplified acoustic traveling wave.
- 41. The method of claim 32, further comprising:
converting the amplified acoustic traveling wave into electrical energy.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] 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 F49620-99-C-0054 awarded by the National Defense Science and Engineering Graduate Fellowship, a part of the United States Air Force Office of Scientific Research.
Provisional Applications (1)
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Number |
Date |
Country |
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60364207 |
Mar 2002 |
US |