Claims
- 1. An electrodeless discharge lamp having a radio frequency power source, said lamp comprising:
- a sealed lamp vessel containing a gaseous mixture of mercury and a rare gas;
- a coil network for inducing a high-frequency electromagnetic field into said mixture so as to induce a plasma in said gaseous mixture;
- an impedance matching network between said power source and said coil network, said impedance matching network for providing a preselected power transfer function between said power source and said coil network;
- a control amalgam disposed within said plasma; and
- a supporting member for supporting said control amalgam and thermally isolating said control amalgam from said vessel;
- wherein said control amalgam controls the vapor pressure of said mercury during steady-state operation of said lamp.
- 2. The lamp of claim 1 wherein said electromagnetic field oscillates between 100 kHz and 30 MHz.
- 3. The lamp of claim 1 wherein said control amalgam comprises indium.
- 4. The lamp of claim 1 wherein said control amalgam comprises silver.
- 5. The lamp of claim 1 wherein said control amalgam comprises silver and indium.
- 6. The lamp of claim 5 wherein said control amalgam comprises an amalgamating metal of 10 to 20% silver by mass.
- 7. The lamp of claim 1 wherein said control amalgam is operative to control the vapor pressure of mercury within said vessel within the range of from 4.5 to 7.0 mTorr when the temperature of said amalgam is at one or more points within the temperature range of from 190 to 340 degrees C.
- 8. The lamp of claim 7 wherein said control amalgam is operative to control the vapor pressure of mercury within said vessel within the range of from 4.5 to 7.0 mTorr when the temperature of said control amalgam is about 220 degrees C.
- 9. The lamp of claim 1 wherein the mass of the control amalgam is in the range of from 60 to 90 mg.
- 10. The lamp of claim 1 wherein said supporting member comprises a glass strand.
- 11. The lamp of claim 1 wherein said impedance matching network provides for maximum power transfer when the temperature of said control amalgam is low, said power transfer decreasing as said control amalgam increases in temperature.
- 12. The lamp of claim 1 wherein said transfer function provides for maximum power transfer efficiency when said control amalgam is at a steady-state operating temperature.
- 13. The lamp of claim 1 wherein said coil network comprises a coil wound around a core of magnetic material.
- 14. The lamp of claim 1 further comprising a start-up amalgam sample disposed within said plasma.
- 15. The lamp of claim 14 wherein the mass of the start-up amalgam is in the range of from 5 to 10 mg.
- 16. The lamp of claim 14 further comprising a second supporting member for supporting said start-up amalgam sample and thermally isolating said start-up amalgam sample from said vessel.
- 17. The lamp of claim 14 wherein said start-up amalgam sample is substantially free of mercury during steady-state operation of said lamp.
- 18. The lamp of claim 14 wherein said start-up amalgam comprises indium.
- 19. The lamp of claim 16 wherein said second supporting member comprises a glass strand.
- 20. The lamp of claim 14 wherein said impedance matching network provides for maximum power transfer when the temperature of said control amalgam is low, said power transfer decreasing as said control amalgam increases in temperature.
- 21. The lamp of claim 14 wherein said transfer function provides for maximum power transfer efficiency when said control amalgam is at a steady-state operating temperature.
- 22. An electrodeless discharge lamp having a radio frequency power source, said lamp comprising:
- a sealed lamp vessel containing a gaseous mixture of mercury and a rare gas;
- a coil network for inducing a high-frequency electromagnetic field into said mixture so as to induce a plasma in said gaseous mixture;
- a start-up amalgam sample disposed within said plasma;
- a control amalgam sample for controlling the vapor pressure of said mercury during steady-state operation of said lamp, said control amalgam having a selected warm-up time, said warm-up time being a time required for said control amalgam to reach a selected temperature approaching a steady-state operating temperature of said control amalgam after said lamp is energized; and
- a diffusion path extending to said control amalgam, wherein said diffusion path establishes a rate at which said control amalgam absorbs said mercury from said gaseous mixture;
- wherein said warm-Up time of said control amalgam and said rate at which said control amalgam absorbs said mercury from said gaseous mixture are established such that said control amalgam reaches said selected temperature at a time approximately coincident with said control amalgam gaining control of mercury vapor pressure within said vessel.
- 23. The lamp of claim 22 wherein said path includes a conduit, and wherein said control amalgam is disposed within said conduit.
- 24. The lamp of claim 23 wherein said conduit is between 1 and 2 inches long.
- 25. The lamp of claim 23 wherein said conduit has a cross-sectional area of approximately 30 square millimeters.
- 26. The lamp of claim 22 wherein said start-up amalgam and said control amalgam comprise indium.
- 27. The lamp of claim 22 wherein said transfer function provides for maximum power transfer efficiency when said control amalgam is at a steady-state operating temperature.
- 28. The lamp of claim 22 wherein said electromagnetic field oscillates between 100 kHz and 30 MHz.
- 29. The lamp of claim 22, further comprising a supporting member for supporting said start-up amalgam, said member having very low thermal conductivity.
- 30. The lamp of claim 29 wherein said supporting member comprises a glass strand.
- 31. An electrodeless discharge lamp having a radio frequency power source, said lamp comprising:
- a sealed lamp vessel containing a gaseous mixture of mercury and a rare gas;
- a coil network for inducing a high-frequency electromagnetic field into said mixture so as to induce a plasma in said gaseous mixture;
- a start-up amalgam disposed within said plasma; and
- a control amalgam sample substantially thermally isolated from inner surfaces of said vessel, said control amalgam sample for controlling the vapor pressure of said mercury during steady-state operation of said lamp.
- 32. The lamp of claim 31, further comprising:
- a diffusion path extending to said control amalgam, wherein said diffusion path establishes a rate at which said control amalgam absorbs said mercury from said gaseous mixture;
- wherein said control amalgam has a selected warm-up time, said warm-up time being a time required for said control amalgam to reach a selected temperature approaching a steady-state operating temperature after said lamp is energized; and
- wherein said warm-up time of said control amalgam and said rate at which said control amalgam absorbs said mercury from said gaseous mixture are established such that said control amalgam reaches said selected temperature at a time approximately coincident with said control amalgam gaining control of mercury vapor pressure within said vessel.
- 33. The lamp of claim 31, wherein said control amalgam is thermally isolated from said power source.
- 34. The lamp of claim 31, further comprising a supporting member for supporting said start-up amalgam and thermally isolating said start-up amalgam from inner surfaces of said vessel.
- 35. The lamp of claim 31, further comprising a supporting member for supporting said control amalgam and thermally isolating said control amalgam from inner surfaces of said vessel.
- 36. The lamp of claim 32, said start-up amalgam comprising mercury before said lamp is energized, said mercury being quickly released into said vessel when said lamp is energized, said mercury condensing on inner surfaces of said vessel until said inner surfaces gain control of the mercury vapor pressure within said vessel, wherein the mercury vapor pressure remains between 4.5 to 7.0 mTorr from the time at which said inner surfaces gain control of the mercury vapor pressure to the time at which said control amalgam gains control of the mercury vapor pressure.
Parent Case Info
This application is a continuation of application Ser. No. 08/352,267, filed Dec. 07, 1994, now abandoned, which is a continuation of application Ser. No. 08/129,893, filed Sep. 30, 1993, now abandoned.
US Referenced Citations (13)
Non-Patent Literature Citations (1)
Entry |
A. Netten et al., "The operating principles of the Philip QL lamp system," Philips Lighting B. V. 1991, pp. 2-15. |
Continuations (2)
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Number |
Date |
Country |
Parent |
352267 |
Dec 1994 |
|
Parent |
129893 |
Sep 1993 |
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