Claims
- 1. A reflector for a medical luminaire, for use with an incandescent bulb or a discharge bulb, which comprises a reflector blank formed of metal and having a reflecting surface and an interference coating being disposed directly on the reflecting surface, the interference coating comprising a plurality of individual coating layers being selected from the group consisting of metal oxide coating layers and metal coating layers, the plurality of individual coating layers comprising alternative coating layers of high-refractive coating layers and low-refractive coating layers, wherein at least one of said plurality of individual coating layers is a metal coating layer, each individual interference coating layer having a thickness of 0.05 .mu.m to 2 .mu.m, and the reflecting surface having a plurality of trapezoidal facets tapering toward the point of intersection with the axis of rotation, the facets being arrayed on at least 8 circular rings around an axis of rotation of the reflector and at least 50 facets being provided in each circular ring.
- 2. The reflector according to claim 1, wherein the plurality of facets are arrayed substantially in the form of a hollow ellipsoid or paraboloid.
- 3. The reflector according to claim 1, wherein the reflecting surface comprises substantially aluminum.
- 4. The reflector according to claim 1, wherein the coating layer deposited on the reflecting surface comprises titanium dioxide.
- 5. The reflector according to claim 4, wherein the coating layer deposited on the reflecting surface comprises silicon dioxide.
- 6. The reflector according to claim 1 wherein the metal coating layer comprises aluminum.
- 7. The reflector according to claim 1, wherein the top coating layer of the interference coating comprises silicon dioxide.
- 8. The reflector according to claim 1, wherein the reflector absorbs impinging light starting at 400 nm.
- 9. The reflector according to claim 8, wherein the reflector has a maximum absorption at a wavelength of 700 to 750 nm and the absorption exceeds 50% in the near infrared.
- 10. A combination of a reflector and a bulb comprising:
- a reflector according to claim 1, and further comprising a centrally located aperture therein for accommodating a bulb, and a bulb disposed in the centrally located aperture.
- 11. The combination of a reflector and a bulb according to claim 10, wherein the bulb is an incandescent bulb having a filament.
- 12. The combination of a reflector and a bulb according to claim 11, wherein the shortest side of each facet is longer than the length of the filament of the incandescent bulb.
- 13. The combination of a reflector and a bulb according to claim 10, wherein the bulb is a discharge bulb having a pair of electrodes.
- 14. The combination of a reflector and a bulb according to claim 13, wherein the shortest side of each facet is longer than the spacing between the electrodes of the discharge bulb.
- 15. The combination of a reflector and a bulb according to claim 10, wherein the bulb is a halogen bulb with a concave reflecting surface.
- 16. The combination of a reflector and a bulb according to claim 10, wherein the bulb is for an operating room luminaire.
- 17. A reflector for a medical luminaire, for use with an incandescent bulb or a discharge bulb, which consists essentially of a reflector blank formed of metal and having a reflecting surface and an interference coating being disposed directly on the reflecting surface, the interference coating consists essentially of a plurality of individual coating layers being selected from the group consisting of metal oxide coating layers and metal coating layers, the plurality of individual coating layers consists essentially of alternative coating layers of high-refractive coating layers and low-refractive coating layers, wherein at least one of said plurality of individual coating layers is a metal coating layer, each individual interference coating layer having a thickness of 0.05 .mu.m to 2 .mu.m, and the reflecting surface having a plurality of trapezoidal facets tapering toward the point of intersection with the axis of rotation, the facets being arrayed on at least 8 circular rings around an axis of rotation of the reflector and at least 50 facets being provided in each circular ring.
Priority Claims (1)
Number |
Date |
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Kind |
195 43 005 |
Nov 1995 |
DEX |
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Parent Case Info
This application is a continuation-in-part application of application Ser. No. 08/729,038, filed Oct. 10, 1996 abandoned, the entire contents of which are hereby incorporated by reference.
US Referenced Citations (10)
Foreign Referenced Citations (4)
Number |
Date |
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25 35 174 |
Feb 1977 |
DEX |
26 04 921 |
Sep 1977 |
DEX |
89 06 325 |
Dec 1989 |
DEX |
2 229 264 |
Sep 1990 |
GBX |
Continuation in Parts (1)
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Number |
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Parent |
729038 |
Oct 1996 |
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