Claims
- 1. A high intensity discharge lamp having a vaporizable fill material comprising halides of sodium, scandium, and thorium wherein the operating characteristics of said lamp include a lumens per watt greater than about 85, a color rendering index greater than about 80, and a correlated color temperature between about 3000° K. and about 6000° K.
- 2. The lamp of claim 1 further comprising a notch filter which reflects at least seventy percent of the light generated by the lamp within a narrow wavelength band in the visible spectrum and transmits at least seventy percent of the light generated by the lamp within the visible spectrum and outside of said narrow band.
- 3. The lamp of claim 2 wherein the notch filter reflects at least eighty percent of the light generated by the lamp within a narrow wavelength band in the visible spectrum and transmits at least eighty percent of the light generated by the lamp within the visible spectrum and outside of said narrow band.
- 4. The lamp of claim 2 wherein the narrow wavelength band is substantially centered on a wavelength of about 590 nm.
- 5. The lamp of claim 2 wherein said notch filter comprises a multilayer coating.
- 6. The lamp of claim 5 wherein said coating is applied to the outer surface of the arc tube containing said fill material.
- 7. The lamp of claim 5 further comprising a shroud substantially surrounding the arc tube, wherein said coating is applied to said shroud.
- 8. The lamp of claim 2 wherein said filter comprises a shroud substantially surrounding the arc tube.
- 9. A high intensity discharge lamp comprising:
an arc tube forming a chamber; a vaporizable fill material comprising halides of sodium and scandium contained within said chamber for forming a light emitting plasma during operation of the lamp; and a notch filter for reflecting at least seventy percent of the light generated within said chamber within a narrow wavelength band in the visible spectrum and transmitting at least seventy percent of the light generated within said chamber in the visible spectrum and outside of said narrow band.
- 10. The lamp of claim 9 wherein said notch filter comprises a multilayer coating applied to said arc tube.
- 11. The lamp of claim 9 further comprising an outer envelope substantially surrounding said arc tube, wherein said notch filter comprises a multilayer filter applied to said outer envelope.
- 12. The lamp of claim 9 further comprising a shroud substantially surrounding said arc tube, wherein said notch filter comprises a multilayer filter applied to said shroud.
- 13. The lamp of claim 9 wherein the CRI of the light transmitted by said filter is greater than the CRI of the light emitted from the plasma.
- 14. The lamp of claim 9 wherein the narrow wavelength band is substantially centered on a wavelength of about 590 nm.
- 15. A lamp comprising:
an arc tube containing a light emitting plasma; and a notch filter for reflecting a portion of the light emitted from said plasma into said plasma, the reflectivity of said filter being a function of the spectral absorption in the plasma of the light reflected from the filter.
- 16. The lamp of claim 15 wherein the CRI of the light transmitted by said notch filter is greater than the CRI of the light emitted from said plasma.
- 17. The lamp of claim 15 wherein the reflectivity of said filter is a function of the spectral characteristics of the light emitted from the plasma.
- 18. The lamp of claim 15 wherein the reflectivity of said filter is a function of the dimensions of said plasma.
- 19. The lamp of claim 15 wherein the reflectivity of said filter is a function of the angular distribution of the light emitted from said plasma on the filter.
- 20. The lamp of claim 15 wherein said filter comprises a multilayer coating.
- 21. The lamp of claim 20 wherein said coating is applied to the arc tube.
- 22. The lamp of claim 20 wherein said coating is applied to a surface substantially surrounding the arc tube.
- 23. The lamp of claim 20 wherein said coating comprises alternating layers of material, one material having a high index of refraction relative to the other material.
- 24. The lamp of claim 23 wherein said coating comprises alternating layers of silica and an oxide of zirconium, tantalum, titanium, niobium, or hafnium.
- 25. The lamp of claim 15 wherein the fill material comprises one or more metal halides.
- 26. The lamp of claim 25 wherein the fill material comprises halides of sodium and scandium.
- 27. The lamp of claim 26 wherein said notch filter reflects greater than seventy percent of the light emitted from said plasma in a narrow wavelength band substantially centered on a wavelength of about 590 nm.
- 28. A lamp comprising an arc tube containing a light emitting plasma and a notch filter, said filter comprising alternating layers of materials having differing indices of refraction, the number and thickness of said layers being a function of the spectral absorption characteristics of the plasma, so that said filter reflects at least seventy percent of incident light within a narrow wavelength band in the visible spectrum and transmits at least seventy percent of incident light within the visible spectrum and outside of said narrow band.
- 29. A lamp comprising an arc tube containing a light emitting plasma and a notch filter, said filter comprising alternating layers of materials having differing indices of refraction, the number and thickness of said layers being a function of the angular distribution of the light emitted from the plasma on the filter so that said filter reflects at least seventy percent of incident at desired wavelengths.
- 30. A lamp comprising an arc tube containing a light emitting plasma and a notch filter, said filter comprising alternating layers of materials having differing indices of refraction, the number and thickness of said layers being a function of the dimensions of the plasma so that said filter transmits no more than thirty percent of incident light at desired wavelengths.
- 31. The lamp of claim 30 wherein the number and thickness of the layers in the filter are a function of the dimensions of one or more arcs within the plasma each attributable to a specific element in the lamp fill material.
- 32. A lamp comprising an arc tube containing a light emitting plasma and a notch filter, said filter comprising alternating layers of materials having differing indices of refraction, the number and thickness of said layers being a function of the geometry of the filter so that said filter reflects at least seventy percent of incident light at desired wavelengths.
- 33. A lamp having an arc tube containing a light emitting plasma and a filter for reflecting a portion of the emitted light into the plasma so that the CRI of the light transmitted by the filter is greater than the CRI of the light emitted from the plasma, said filter comprising a multilayer thin film coating, the number and thickness of the layers forming said coating being a function of (i) the spectral emission characteristics of the light emitted from the plasma, (ii) the spectral absorption characteristics of the plasma, (iii) the physical characteristics of the plasma, and (iv) the angular distribution of the light emitted from the plasma on the filter.
- 34. A lamp having an arc tube containing a light emitting plasma and a filter for reflecting a portion of the emitted light into the plasma so that the CRI of the light transmitted by the filter is greater than the CRI of the light emitted from the plasma, said filter being formed by a process comprising the steps of forming a multilayer coating on a surface substantially surrounding the plasma, the number and thickness of the layers in the coating being selected as a function of (i) the spectral emission characteristics of the light emitted from the plasma, (ii) the spectral absorption characteristics of the plasma, (iii) the physical characteristics of the plasma, and (iv) the angular distribution of the light emitted from the plasma on the filter, so that the filter reflects at least seventy percent of the light emitted from the plasma in a narrow wavelength band in the visible spectrum and transmits at least seventy percent of the light emitted from the plasma in the visible spectrum and not in the narrow wavelength band.
- 35. A lamp comprising:
an arc tube forming a chamber; a vaporizable fill material comprising one or more halides of sodium and scandium contained within said chamber, said fill material forming a light emitting plasma during operation of the lamp; and a multilayer coating on said arc tube, said coating forming a notch filter for reflecting at least seventy percent of the emitted light within a narrow wavelength band including a wavelength of 590 nm so that the CRI of the light transmitted by said filter is greater than the CRI of the light emitted from the plasma.
- 36. A method of making a high intensity discharge lamp having a vaporizable fill material of one or more metal halides forming a light emitting plasma during operation of the lamp, said method comprising the steps of:
selecting a fill material comprising halides of sodium, scandium and thorium; and filtering the light emitted from the plasma, so that the operating characteristics of said lamp include a lumens per watt greater than about 85, a color rendering index greater than about 80, and a correlated color temperature between about 3000° K. and about 6000° K.
- 37. The method of claim 36 wherein the step of filtering the light comprises providing a notch filter which reflects at least seventy percent of the light generated by the lamp within a narrow wavelength band in the visible spectrum and transmits at least seventy percent of the light generated by the lamp within the visible spectrum and outside of said narrow band.
- 38. The method of claim 37 wherein the notch filter reflects at least eighty percent of the light generated by the lamp within a narrow wavelength band in the visible spectrum and transmits at least eighty percent of the light generated by the lamp within the visible spectrum and outside of said narrow band.
- 39. The method of claim 37 wherein the narrow wavelength band is substantially centered on a wavelength of about 590 nm.
- 40. The method of claim 37 wherein the notch filter comprises a multilayer coating.
- 41. A method of improving the CRI of a lamp having an arc tube containing a light emitting plasma wherein the plasma comprises halides of sodium and scandium, said method comprising the step of filtering the light emitted from the plasma so that no more than thirty percent of the light within a narrow wavelength band in the visible spectrum is transmitted and more than seventy percent of the light within the visible spectrum and outside of the narrow band is transmitted.
- 42. The method of claim 41 wherein said step of filtering comprises applying a multilayer coating on the arc tube.
- 43. The method of claim 42 wherein during operation of the lamp, the temperature of the arc tube wall having the coating applied is greater than the temperature of the arc tube wall with no coating applied.
- 44. The method of claim 41 wherein said step of filtering comprises applying a multilayer coating on a surface substantially surrounding the arc tube.
- 45. The method of claim 41 wherein the narrow wavelength band includes 590 nm.
- 46. The method of claim 41 wherein the reflectivity of the filter is selected as a function of the angular distribution of the light emitted from the plasma on the filter.
- 47. The method of claim 41 wherein the reflectivity of the filter is selected as a function of the dimensions of the plasma.
- 48. The method of claim 41 wherein the reflectivity of the filter is selected as a function of the geometry of the filter.
- 49. A method of depositing a multilayer coating on a surface substantially surrounding a light emitting plasma in a lamp, said method comprising the step of selecting the number and thickness of the layers as a function of the dimensions of the plasma
- 50. The method of claim 49 further comprising the step of selecting the number and thickness of the layers as a function of the dimensions of an arc within the plasma resulting from vaporization of a specific element in the fill material of the lamp.
- 51. A method of depositing a multilayer coating on a surface substantially surrounding a light emitting plasma in a lamp, said method comprising the step of selecting the number and thickness of the layers as a function of the spectral absorption characteristics of the plasma.
- 52. A method of depositing a multilayer coating on a surface substantially surrounding a light emitting plasma in a lamp, said method comprising the step of selecting the number and thickness of the layers as a function of the angular distribution of the light emitted from the plasma on the coated surface.
- 53. A method of depositing a multilayer coating on a surface substantially surrounding a light emitting plasma in a lamp, said method comprising the step of selecting the number and thickness of the layers as a function of the geometry of the surface to be coated.
- 54. A method of making a lamp comprising the steps of:
(a) providing an arc tube containing a light emitting plasma; and (b) providing a filter for reflecting a portion of the light emitted from the plasma into the plasma wherein the reflectivity of the filter is selected as a function of the spectral absorption in the plasma of light reflected from the filter.
- 55. The method of claim 54 wherein the CRI of the light transmitted by the filter is greater than the CRI of the light emitted from the plasma.
- 56. The method of claim 54 comprising the step of determining the spectral absorption characteristics of the plasma.
- 57. The method of claim 54 comprising the step of determining the dimensions of the plasma.
- 58. The method of claim 57 comprising the step of determining the dimensions of an arc in the plasma emitting light at specific wavelengths.
- 59. The method of claim 54 comprising the step of determining the angular distribution of the light emitted from the plasma on the filter.
- 60. The method of claim 54 wherein the filter comprises a multilayer coating, the number and thickness of the layers in the coating being selected as a function of the spectral emission characteristics of the plasma and the dimensions of the plasma so that the CRI of the light transmitted by the coating is greater than the CRI of the light emitted from the plasma.
- 61. The method of claim 54 wherein the filter comprises a multilayer coating, the number and thickness of the layers in the coating being selected as a function of the spectral emission characteristics of the plasma and the spectral absorption characteristics of the plasma so that the CRI of the light transmitted by the coating is greater than the CRI of the light emitted from the plasma.
- 62. The method of claim 54 wherein the filter comprises a multilayer coating, the number and thickness of the layers in the coating being selected as a function of the spectral emission characteristics of the plasma and the angular distribution of the light emitted from the plasma on the coating so that the CRI of the light transmitted by the coating is greater than the CRI of the light emitted from the plasma.
- 63. The method of claim 54 wherein the filter comprises a multilayer coating applied to the arc tube.
- 64. The method of claim 54 wherein the filter comprises a multilayer coating applied to a surface substantially surrounding the arc tube.
- 65. The method of claim 54 comprising the step of forming the filter by depositing alternating layers of materials having differing indices of refraction on a surface substantially surrounding the plasma.
- 66. The method of claim 65 wherein the filter comprises alternating layers of silica and an oxide of zirconium, tantalum, titanium, niobium, or hafnium.
- 67. A method of making a lamp having an arc tube containing a light emitting plasma and a multilayer coating for reflecting a portion of the light emitted from the plasma to obtain a desired spectral emission from the lamp, said method comprising the step of forming the coating as a function of (i) the spectral characteristics of the light emitted from the plasma, (ii) the spectral absorption characteristics of the plasma, (iii) the physical characteristics of the plasma, and (iv) the angular distribution of the light emitted from the plasma on the filter.
- 68. The method of claim 67 wherein the coating reflects more than seventy percent of the light emitted from the plasma in a narrow wavelength band in the visible spectrum and transmits more than seventy percent of the light emitted from the plasma in the visible spectrum and outside of the narrow band so that the CRI of the light transmitted by the coating is greater than the CRI of the light emitted from the plasma.
- 69. A method of selecting the number and thickness of the layers in a multilayer thin film coating to be applied to a surface of a metal halide lamp surrounding the light emitting plasma to raise the CRI of the lamp at a desired color temperature, said method comprising the steps of:
(a) determining the spectral emission characteristics of the plasma; and (b) selecting reflectivity levels for the coating at each emission wavelength so that the CRI of the light by the coating is greater than the CRI of the light emitted from the plasma at the desired color temperature, the reflectivity levels being determined as a function of (i) the spectral absorption characteristics of the plasma, (ii) the dimensions of the plasma, and (iii) the angular distribution of the light emitted from the plasma on the coating.
- 70. The method of claim 69 wherein the coating reflects more than thirty percent of the light emitted from the plasma in a narrow wavelength band in the visible spectrum and transmits more than seventy percent of the light emitted from the plasma in the visible spectrum and outside of the narrow band.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/279,685.
Provisional Applications (1)
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Number |
Date |
Country |
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60279685 |
Mar 2001 |
US |