Claims
- 1. Apparatus comprising:
- a source of feedstock gas,
- a rigid shell defining an enclosed interior volume,
- first means for conducting a first quantity of said feedstock gas from said source of feedstock gas to a first specific region within said enclosed volume within said rigid shell,
- a quantity of inert gas located within said rigid shell,
- wherein
- a resonant pressure wave exists within said enclosed volume, said resonant pressure wave being identified with oscillatory motions of at least a portion of said inert gas at an oscillation frequency,
- a velocity node exists within said first specific region,
- said velocity node has pressure wave pressure range which is greater than the pressure wave pressure range at the interior surface of said rigid shell,
- said first means for conducting said first quantity of said feedstock gas from said source of feedstock gas to said specific region within said enclosed volume within said rigid shell permits said oscillatory motions of at least a portion of said inert gas which said oscillatory motions are radially oriented with respect to said first specific region.
- 2. Apparatus as in claim 1 wherein:
- said rigid shell is spherical.
- 3. Apparatus as in claim 1 wherein:
- said first means for conducting said first quantity said feedstock gas from said source of feedstock gas to a first specific region within said enclosed volume within said rigid shell comprises a separating wall which is radially oriented with respect to said first specific region.
- 4. Apparatus as in claim 3 wherein:
- said separating wall which is radially oriented with respect to said first specific region is a tapered nozzle.
- 5. Apparatus as in claim 4 wherein:
- said tapered nozzle has an exit proximate to said velocity node which exists within said first specific region.
- 6. Apparatus as in claim 1 wherein:
- said first means for conducting said first quantity said feedstock gas from said source of feedstock gas to a first specific region within said enclosed volume within said rigid shell comprises at least one modular subassembly which allows passage of said first quantity of feedstock gas from said source of feedstock gas to said first specific region while minimizing passage of pressure wave fluctuations from said enclosed internal volume to said source of feedstock gas.
- 7. Apparatus as in claim 6 wherein:
- said modular subassembly comprises a tube defining a contained interior volume, said tube being of such size that a resonant pressure wave in said tube will have a frequency equal to the resonant frequency in said rigid shell,
- a first end of said tube being joined to said first aperture in said rigid shell so that said contained interior volume within said tube is in communication with said enclosed volume within said rigid shell and a second aperture in said tube located proximate to a pressure node in said tube and wherein
- said quantity of feedstock gas enters said tube through said second aperture and passes to said enclosed volume within said rigid shell through said first end of said tube.
- 8. Apparatus as in claim 6 wherein:
- said modular subassembly comprises a first spherical half shell and a half shell cover, said modular subassembly having first and second apertures therein, said first aperture being in said half shell cover,
- said half shell and said half shell cover being joined at their peripheries and together defining a hemispherical interior volume,
- said hemispherical interior volume being of such size that the frequency of a resonant pressure wave within said hemispherical interior volume will be equal to said frequency of said resonant pressure wave in said rigid shell,
- said first aperture in said shell cover being joined to said first aperture in said rigid shell,
- said first quantity of feedstock gas passing in sequence from said source of feedstock gas through said second aperture in said modular subassembly, through said hemispherical interior volume, through said first aperture in said modular subassembly and into said first specific region.
- 9. Apparatus as in claim 6 wherein:
- said modular subassembly comprises a first flared tube and a flared tube end cover, the smaller end of said first flared tube being joined to said first aperture in said rigid shell, the larger end of said flared tube being closed by said flared tube end cover,
- an aperture in said modular subassembly,
- said flared tube and flared tube end cover defining an enclosed interior volume of such size that the frequency of a resonant pressure wave within said enclosed interior volume within said flared tube will be equal to said frequency of said resonant pressure wave in said rigid shell,
- said first quantity of feedstock gas passing in sequence from said source of feedstock gas through said aperture in said modular subassembly, through said enclosed interior volume defined by said flared tube and said flared tube end cover and through said first aperture in said rigid shell and into said first specific region.
- 10. Apparatus as in claim 6 wherein:
- said modular subassembly comprises a first flared tube and a vessel,
- the smaller end of said first flared tube being joined to said first aperture in said rigid shell, the larger end of said flared tube being joined to a vessel,
- an aperture in said modular subassembly,
- said flared tube and vessel defining an enclosed interior volume of such size that the frequency of a resonant pressure wave within said enclosed interior volume within said flared tube and vessel will be equal to said frequency of said resonant pressure wave in said rigid shell,
- said first quantity of feedstock gas passing in sequence from said source of feedstock gas through said aperture in said modular subassembly, through said enclosed interior volume defined by said flared tube and said vessel and through said first aperture in said rigid shell and into said first specific region.
- 11. Apparatus as in claim 6 further having
- a second means for conducting said first quantity said feedstock gas from said source of feedstock gas to a first specific region within said enclosed volume within said rigid shell,
- said second means for conducting a comprises at least a second modular subassembly which allows passage of said first quantity of feedstock gas from said source of feedstock gas to said first specific region while minimizing passage of pressure wave fluctuations from said enclosed internal volume to said source of feedstock gas.
- 12. Apparatus as in claim 1 having
- means for causing rotation of at least a portion of said quantity of inert gas which is located within said rigid shell about said first quantity of feedstock gas.
- 13. Apparatus as in claim 13 wherein
- said means to cause rotation of at least a portion of said quantity of inert gas comprises a nozzle which directs gas into said enclosed volume.
- 14. Apparatus as in claim 13 wherein
- said nozzle is tangentially oriented with respect to said rigid shell.
- 15. Apparatus comprising:
- a source of feedstock gas,
- a rigid shell defining an enclosed interior volume,
- first means for conducting a first quantity of said feedstock gas from said source of feedstock gas to a first specific region within said enclosed volume within said rigid shell,
- a quantity of inert gas located within said rigid shell,
- a resonant pressure wave existing within said enclosed volume, said resonant pressure wave being identified with oscillatory motions of at least a portion of said inert gas at an oscillation frequency,
- a velocity node of said resonant pressure wave being located within said first specific region,
- said first means for conducting said first quantity said feedstock gas from said source of feedstock gas to said specific region within said enclosed volume within said rigid shell permits oscillatory motions of at least a portion of said inert which oscillatory motions are radially oriented with respect to said first specific region.
- 16. Apparatus comprising:
- a sink for a product gas,
- a rigid shell defining an enclosed interior volume,
- first means for conducting a first quantity of said product gas from a first specific region within said enclosed volume within said rigid shell to said sink,
- a quantity of inert gas located within said rigid shell,
- wherein
- a resonant pressure wave exists within said enclosed volume, said resonant pressure wave being identified with oscillatory motions of at least a portion of said inert gas at an oscillation frequency,
- a velocity node exists within said first specific region,
- said velocity node has pressure wave pressure range which is greater than the pressure wave pressure range at the interior surface of said rigid shell,
- said first means for conducting said first quantity said product gas from said first specific region within said enclosed volume within said rigid shell to said sink permits oscillatory motions of at least a portion of said inert which oscillatory motions are radially oriented with respect to said first specific region.
- 17. Apparatus as in claim 16 wherein:
- said rigid shell is spherical.
- 18. Apparatus as in claim 16 wherein:
- said first means for conducting said first quantity said product gas from said first specific region within said enclosed volume within said rigid shell to said sink comprises a separating wall which is radially oriented with respect to said first specific region.
- 19. Apparatus as in claim 18 wherein:
- said separating wall which is radially oriented with respect to said first specific region is a tapered nozzle.
- 20. Apparatus as in claim 19 wherein:
- said tapered nozzle has an exit proximate to said velocity node which exists within said first specific region.
- 21. Apparatus as in claim 16 wherein:
- said first means for conducting said first quantity said product gas from said specific region within said enclosed volume within said rigid shell to said sink for product gas comprises means to cause rotation of at least a portion of said quantity of inert gas which is located within said rigid shell about said first quantity of feedstock gas.
- 22. Apparatus as in claim 16 wherein:
- said first means for conducting a first quantity said product gas from said first specific region within said enclosed volume within said rigid shell to said to sink for product gas comprises at least one modular subassembly which allows passage of said first quantity of product gas from said first specific region within said enclosed volume within said rigid shell to said sink for product gas while minimizing passage of pressure wave fluctuations from said enclosed internal volume to said sink for product gas.
CROSS REFERENCE TO RELATING APPLICATIONS
The present Application is a continuation-in-part of Provisional Application Ser. No. 60/034,484 filed on Jan. 7, 1997.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4367130 |
Lemelson |
Jan 1983 |
|