Claims
- 1. A radio frequency excited laser comprising:
a gas medium entering in a gas inlet and passing longitudinally through a nozzle within a laser body; at least one RF electrode within said nozzle; a dielectric plate insulating said at least one RF electrode; an optical resonator within said nozzle.
- 2. The radio frequency excited laser of claim 1 wherein said nozzle is a subsonic nozzle.
- 3. The radio frequency excited laser of claim 1 wherein said nozzle is a supersonic nozzle.
- 4. The radio frequency excited laser of claim 1 wherein said optical resonator is coextensive with said at least one RF electrode.
- 5. The radio frequency excited laser of claim 1 wherein said optical resonator is downstream of said at least one RF electrode.
- 6. The radio frequency excited laser of claim 1 wherein said optical resonator is partially coextensive with said RF electrode.
- 7. The radio frequency excited laser of claim 1 wherein said gas inlet is in flow communication with at least one turbine.
- 8. The radio frequency excited laser of claim 7 wherein said at least one turbine is comprised of a first turbine and a second turbine, said first and second turbine in parallel connection.
- 9. The radio frequency excited laser of claim 7 wherein said at least one turbine is comprised of a first and a second turbine, said first and said second turbine in serial connection.
- 10. The radio frequency excited laser of claim 1 further comprising a gas outlet adjacent said resonator and in flow communication with a catalyst.
- 11. The radio frequency excited laser of claim 10 wherein said gas catalyst is in flow communication with a heat exchanger.
- 12. The radio frequency excited laser of claim 1 wherein said nozzle is comprised of a subsonic area, critical area and a supersonic area.
- 13. The radio frequency excited laser of claim 12 wherein said nozzle is a supersonic nozzle and has a height in said critical area of up to 40 mm.
- 14. The radio frequency excited laser of claim 12 wherein said nozzle has a coefficient of expansion from 1 to 30.
- 15. The radio frequency excited laser of claim 12 wherein said nozzle has a symmetrical configuration.
- 16. The radio frequency excited laser of claim 12 wherein said nozzle has an asymmetrical configuration.
- 17. The radio frequency excited laser of claim 1 wherein said dielectric plate has a surface area greater than the surface area of said at least one RF electrode.
- 18. The radio frequency excited laser of claim 1 further comprising a dielectric coating on said nozzle opposite said dielectric plate, said nozzle adjacent said dielectric coating grounded, wherein said dielectric coating has a surface area greater than the surface area of said at least one RF electrode.
- 19. The radio frequency excited laser of claim 1 wherein said at least one RF electrode is in electrical connection with an RF resonator.
- 20. The radio frequency excited laser of claim 19 wherein said RF resonator is in electrical connection with an RF Power supply.
- 21. The radio frequency excited laser of claim 17 wherein said dielectric plate is made of a non-conductive ceramic.
- 22. The radio frequency excited laser of claim 21 wherein said ceramic dielectric plate is water cooled.
- 23. The radio frequency excited laser of claim 17 wherein said dielectric plate has the thickness from 3 mm up to 30 mm.
- 24. The radio frequency excited laser of claim 18 wherein said dielectric coating is a non-conductive ceramic coating with a thickness from 1 mm up to 5 mm.
- 25. The radio frequency excited laser of claim 12 wherein said RF electrode is placed within said critical area of said nozzle.
- 26. The radio frequency excited laser of claim 12 wherein said RF electrode is placed within said supersonic area of said nozzle.
- 27. The radio frequency excited laser of claim 26 wherein said optical resonator is coextensive with said RF electrode.
- 28. The radio frequency excited laser of claim 26 wherein said optical resonator is placed down stream of said RF electrode.
- 29. The radio frequency excited laser of claim 26 wherein said optical resonator is partially coextensive and partially down stream of said RF electrode.
- 30. The radio frequency excited laser of claim 1 wherein said at least one RF electrode is a first and a second RF electrode longitudinally placed on one side of said laser.
- 31. The radio frequency excited laser of claim 30 wherein said first and second RF electrode is in electrical connection with an individual RF matching device.
- 32. The radio frequency excited laser of claim 31 wherein said RF matching device is in electrical connection with an individual RF power supply.
- 33. The radio frequency excited laser of claim 1 wherein said laser is further comprised of a laser body, said laser body made of an Aluminum or Aluminum Alloy.
- 34. The radio frequency excited laser of claim 1 wherein said gas medium is comprised of at least a portion of carbon dioxide, nitrogen or mixtures thereof.
- 35. The radio frequency excited laser of claim 1 wherein said gas medium is comprised of at least a portion of carbon monoxide, helium, nitrogen or mixtures thereof.
- 36. The radio frequency excited laser of claim 1 wherein said gas medium is comprised of at least a portion of xenon, argon, helium or mixtures thereof.
- 37. The radio frequency excited laser of claim 1 wherein said gas medium is comprised of at least a portion of xenon, krypton, helium or mixtures thereof.
- 38. The radio frequency excited laser of claim 1 wherein said gas flow within said nozzle has the range of speed from 0.01 M up to 5 M.
- 39. The radio frequency excited laser of claim 1 wherein said gas within said nozzle has the a static pressure from 1 Torr up to 200 Torr.
- 40. The radio frequency excited laser of claim 1 wherein said nozzle has a longitudinal dimension of from 5 cm up to 100 cm.
- 41. The radio frequency excited laser of claim 1 wherein said optical resonator is a single pass amplification resonator.
- 42. The radio frequency excited laser in claim 1 wherein said optical resonator is a multi-pass amplification resonator.
- 43. A radio frequency excited laser comprising:
a laser body retaining a gas medium within a gas flow path, said gas medium entering in a gas inlet and passing longitudinally through a nozzle; an RF electrode within said nozzle; a dielectric plate insulating said RF electrode; a dielectric coating opposite said dielectric plate separating said laser body from said gas flow path, said laser body adjacent said dielectric coating grounded; an optical resonator within said gas flow path; at least one turbine in flow communication with said gas flow path.
- 44. A radio frequency excited laser comprising:
a laser body retaining a gas medium within a gas flow path, said gas medium entering in a gas inlet and passing longitudinally through a nozzle; said nozzle having a subsonic area, critical area and supersonic area; at least one RF electrode within said nozzle; a dielectric plate insulating said at least one RF electrode; a dielectric coating opposite said gas flow path from said dielectric plate separating said laser body from said gas flow path; wherein said laser body adjacent said dielectric coating is grounded; an optical resonator within said gas flow path; at least one turbine in flow communication with said gas flow path; a chemical catalyst in said gas flow path; a heat exchanger downstream of said chemical catalyst and within said gas flow path.
- 45. A radio frequency excited laser comprising:
a laser body retaining a gas medium within a gas flow path, said gas medium entering in a gas inlet and passing longitudinally through a nozzle; said nozzle having a subsonic area, critical area and supersonic area; at least one RF electrode operably connected to an RF resonator, said RF resonator powered by an RF power supply; a dielectric plate insulating said at least one RF electrode; a dielectric coating opposite said gas flow path from said dielectric plate separating said laser body from said gas flow path; wherein said laser body adjacent said dielectric coating is grounded; an optical resonator within said gas flow path; at least one turbine in flow communication with said gas flow path; a chemical catalyst in said gas flow path and downstream of said optical resonator; a heat exchanger downstream of said chemical catalyst and within said gas flow path; an RF matching device operably connected to said at least one RF electrode and said RF power supply.
- 46. A radio frequency excited laser comprising:
a laser body retaining a gas medium within a gas flow path, said gas medium entering in a gas inlet and passing longitudinally through a nozzle; at least one RF electrode operably connected to an RF resonator, said RF resonator powered by an RF power supply; a ceramic dielectric plate insulating said at least one RF electrode, said dielectric plate water cooled; a dielectric coating opposite said gas flow path from said dielectric plate separating said laser body from said gas flow path; an optical resonator within said gas flow path; at least one turbine in flow communication with said gas flow path.
Priority Claims (1)
Number |
Date |
Country |
Kind |
PCT/US96/15400 |
Sep 1996 |
US |
|
Parent Case Info
[0001] The present application filed Mar. 5, 2001, is a continuation-in-part application of application Ser. No. 09/043,438, filed on Mar. 18, 1998, now U.S. Pat. No. 6,198,762.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09043438 |
Mar 1998 |
US |
Child |
09799379 |
Mar 2001 |
US |