Claims
- 1. A lamp comprising:
(a) a waveguide having a body comprising a dielectric material, said waveguide configured to be connected to an energy source for receiving electromagnetic energy; and (b) a bulb coupled to the waveguide and containing a gas-fill that emits light when receiving the electromagnetic energy from the waveguide.
- 2. The lamp of claim 1, wherein the body of the waveguide includes an outer coating comprising an electrically conductive material.
- 3. The lamp of claim 1, wherein the bulb comprises a cavity in the body of the waveguide, and a window coupled to and covering the cavity.
- 4. The lamp of claim 3, wherein the window is substantially transparent to the emitted light.
- 5. The lamp of claim 3, wherein the window is comprised of sapphire.
- 6. The lamp of claim 3, wherein the window comprises a focusing lens.
- 7. The lamp of claim 1, wherein the body of the waveguide includes a cavity, and the bulb is at least in part positioned in the cavity.
- 8. The lamp of claim 7, wherein the bulb comprises a ceramic enclosure coupled to a sapphire window.
- 9. The lamp of claim 7, wherein the body of the waveguide includes a main part and a protrusion from the main part, and the cavity is positioned in the protrusion.
- 10. The lamp of claim 3, wherein the body of the waveguide includes a main part and a protrusion from the main part, and the cavity is positioned in the protrusion.
- 11. The lamp of claim 1, further comprising a first energy feed coupled to the waveguide for receiving the electromagnetic energy.
- 12. The lamp of claim 1, wherein the light is visible, infrared, or ultra violet-light.
- 13. The lamp of claim 1, wherein the dielectric material has a dielectric constant greater than approximately 2.0.
- 14. The lamp of claim 1, wherein the electromagnetic energy has a frequency between about 0.5 and about 10 GHz.
- 15. The lamp of claim 1, wherein the walls of the bulb are at least partially reflective of the light.
- 16. The lamp of claim 1, wherein the walls of the bulb are shaped to reflect the light towards the window.
- 17. The lamp of claim 1, wherein the walls of the bulb comprise a dielectric material.
- 18. The lamp of claim 1, wherein the dielectric material is a ceramic.
- 19. The lamp of claim 1, wherein the walls of the bulb thermally isolate the bulb from the waveguide.
- 20. The lamp of claim 1, wherein the window and the walls of the bulb have approximately equal thermal expansion coefficients.
- 21. The lamp of claim 2, wherein the outer coating of the waveguide is thermally conductive.
- 22. The lamp of claim 1, further comprising a heat sink connected to an outer surface of the waveguide.
- 23. The lamp of claim 1, wherein the waveguide has a rectangular prism-like shape.
- 24. The lamp of claim 1, wherein the waveguide has cylindrical prism-like shape.
- 25. The lamp of claim 1, wherein the waveguide is sphere-like in shape.
- 26. The lamp of claim 1, further comprising an energy feed coupled to the waveguide for receiving the electromagnetic energy, wherein a positive force mechanism maintains constant contact between the first energy feed and the waveguide.
- 27. The lamp of claim 1, wherein the energy source is thermally isolated from the waveguide and the bulb.
- 28. The lamp of claim 1, wherein the gas-fill comprises a noble gas and a metal halide.
- 29. The lamp of claim 1, further comprising a thermal isolation layer disposed between the bulb and the waveguide.
- 30. The lamp of claim 29, wherein the thermal isolation layer comprises an evacuated space.
- 31. The lamp of claim 1, wherein an electromagnetic field resonates within the waveguide and includes at least one resonant maximum.
- 32. The lamp of claim 31, further comprising a first energy feed coupled to the waveguide for receiving the electromagnetic energy, wherein the bulb and the first energy feed are proximate to one of the at least one resonant maximum.
- 33. The lamp of claim 31, further comprising a first energy feed coupled to the waveguide for receiving the electromagnetic energy, wherein the electromagnetic energy includes at least two resonant maxima and the first energy feed is positioned at a first maximum of the at least two resonant maxima and the bulb is positioned at a second maximum of the at least two resonant maxima.
- 34. The lamp of claim 31, further comprising first and second energy feeds coupled to the waveguide for receiving the electromagnetic energy, wherein the electromagnetic field includes at least one resonant maxima and the bulb and the first energy feed are proximate to one of the at least one resonant maximum.
- 35. The lamp of claim 31, further comprising the energy source and a feedback mechanism coupled between the waveguide and the energy source, wherein the feedback mechanism samples the electromagnetic field within the waveguide, transmits the sampled field to the energy source, and the energy source adjusts its delivery of electromagnetic energy to maximize the electromagnetic field detected by the feedback mechanism.
- 36. The lamp of claim 35, further comprising a first energy feed coupled between the energy source and the waveguide, wherein the electromagnetic energy includes at least one resonant maximum and the first energy feed is positioned approximately at a maximum of the at least one resonant maximum and the bulb is positioned approximately at a maximum of the at least one resonant maximum.
- 37. The lamp of claim 1 further comprising the energy source.
- 38. A lamp comprising:
a waveguide comprising a dielectric material and being thermally isolated from and configured to receive electromagnetic energy from an energy source, said waveguide having a protrusion on a first side defining a bulb cavity and an electrically and thermally conductive outer coating on an outer surface of the waveguide except the surface defining the protrusion; a bulb containing a gas-fill that produces light when receiving the electromagnetic energy, said bulb being at least in part disposed in the bulb cavity and comprising:
(a) a window, the window being substantially transparent to the light, and (b) an outer wall, the outer wall being hermetically coupled with the window, shaped to direct the light towards the window, and having a thermal expansion coefficient approximately equal to the thermal expansion coefficient of the window, wherein the window and the outer wall define an envelope containing the gas-fill; and (c) a heat sink coupled to the outer surface of the waveguide.
- 39. The lamp of claim 38, wherein the electromagnetic energy resonates within the waveguide and comprises at least one resonant maximum, and wherein the bulb cavity and an input of the electromagnetic energy to the waveguide are proximate to the at least one resonant maximum.
- 40. A lamp comprising:
first and second energy feeds for receiving electromagnetic energy from an energy source; a waveguide having a body comprising a dielectric material, said waveguide being coupled to and for receiving electromagnetic energy from the first energy feed and the second energy feed, having a bulb cavity, and an electrically and thermally conductive coating on the surfaces of the body except the surfaces defining the cavity; a bulb containing a gas-fill, said bulb being disposed in the bulb cavity and comprising a window, the window being substantially transparent to emitted light, and an outer wall, the outer wall being hermetically coupled with the window, shaped to direct the light towards the window, and having a thermal expansion coefficient approximately equal to the thermal expansion coefficient of the window, wherein the window and the outer wall define an envelope of the bulb to contain the gas-fill; and a heat sink coupled to the surface of the waveguide.
- 41. The lamp of claim 40, wherein the waveguide is configured to contain resonant electromagnetic energy that comprises at least three resonant maxima, the first energy feed being proximate to a first resonant maximum, the second energy feed being proximate to a second resonant maximum, and the cavity being proximate to a third resonant maximum.
- 42. A lamp comprising:
a high frequency electromagnetic energy source having an output port and a feedback port; an energy feed coupled to the output port to receive electromagnetic energy from the energy source; a waveguide having a body comprising a dielectric material, said waveguide being coupled to and receiving electromagnetic energy from the energy feed, having a bulb cavity in the body and a reflective outer coating; a feedback mechanism coupled between the feedback port and the waveguide, the feedback mechanism for sampling the electromagnetic energy within the waveguide and for communicating amplitude and phase of the electromagnetic energy to the energy source, the energy source adjusting its output of electromagnetic energy to maximize the electromagnetic energy detected by the feedback mechanism; a bulb containing a gas-fill that produces light when excited by the electromagnetic energy, said bulb being disposed in the cavity; a heat sink coupled to a side of the waveguide.
- 43. The lamp of claim 42, wherein the electromagnetic energy within the waveguide comprises at least one resonant maximum, the energy feed being positioned at one of the at least one resonant maximum, the feedback mechanism being positioned to sample the resonant field, and the bulb cavity being positioned at one of the at least one resonant maximum.
- 44. A lamp comprising:
at least one energy feed for receiving electromagnetic energy from an energy source; a waveguide comprising a dielectric material and coupled to the at least one energy feed for receiving electromagnetic energy, said waveguide having a plurality of separate cavities, and an electrically and thermally conductive outer coating deposited on the outer surfaces of the dielectric except the surfaces comprising the plurality of bulb cavities; a plurality of bulbs containing a noble gas and a light emitter that outputs light when excited by the electromagnetic energy, wherein each of the plurality of bulbs is disposed in one of the plurality of bulb cavities and comprises a window, the window being transparent to the light, and an inner wall shaped to direct the light towards the window and having a thermal expansion coefficient approximately equal to the thermal expansion coefficient of the window, the inner wall being hermetically coupled to the window, the window and the interior wall thereby defining an envelope in which the material is contained; and a plurality of heat sinks coupled to all sides of the waveguide, said plurality of heat sinks positioned to dissipate heat from the waveguide.
- 45. The lamp of claim 44, wherein the electromagnetic energy is resonant within the waveguide and comprises a plurality of energy maxima, the at least one energy feed being positioned approximately at at least one of the plurality of energy maxima.
- 46. A lamp comprising:
an electromagnetic energy source; an energy feed coupled to and receiving electromagnetic energy from the energy source; a dielectric waveguide thermally isolated from the energy source and coupled to and receiving electromagnetic energy from the energy feed, said waveguide having a cavity and an electrically and thermally conductive outer coating the outer surface of the dielectric material except the surface defining the cavity; a thermal isolation layer lining the cavity; a bulb containing a material that produces light when excited by the electromagnetic energy, said bulb being disposed in the cavity, with the thermal isolation layer separating the bulb from the waveguide, and comprising a window, the window being transparent to the light, and an inner wall, the inner wall being hermetically coupled to the window shaped to direct the light towards the window, and having a thermal expansion coefficient approximately equal to the thermal expansion coefficient of the window, the window and the inner wall defining an envelope in which the material is contained; and a heat sink coupled to an outer surface of the waveguide.
- 47. The lamp of claim 46, wherein the electromagnetic energy resonates within the waveguide and comprises at least one resonant maximum, the energy feed and the bulb cavity being proximate to the at least one resonant maximum.
- 48. The lamp of claim 46, wherein the thermal isolation layer comprises an evacuated space.
- 49. The lamp of claim 46, wherein the thermal isolation layer comprises a second dielectric material.
- 50. A method for producing light comprising the steps of:
(a) generating electromagnetic energy; (b) directing the electromagnetic energy into a dielectric waveguide having a cavity; (c) directing the electromagnetic energy into an envelope defined by the cavity and a window, the envelope containing a gas-fill; and (d) exciting the gas-fill into producing light.
- 51. The method of claim 50 further comprising the step of directing the produced light through the window.
- 52. The method of claim 50, further comprising the step of dissipating the heat generated by the plasma through the outer surface of the waveguide.
- 53. The method of claim 50, comprising the steps of:
(e) sampling the levels of electromagnetic energy within the waveguide, and (f) adjusting the frequency of the electromagnetic energy generated until the sampled electromagnetic energy is at a maximum.
- 54. The method of claim 50, further comprising the step of generating electromagnetic resonance within the waveguide.
Parent Case Info
[0001] This application claims priority to a U.S. Provisional Application entitled “Plasma Lamp,” having Ser. No. 60/222,028 and filed on Jul. 31, 2000, and a U.S. which is hereby incorporated by reference as though fully set forth herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60222028 |
Jul 2000 |
US |