Claims
- 1. A sensor apparatus comprising:
- first radiant energy reflector means having a reflective surface and defining a focal point spaced from said reflective surface of said first radiant energy reflector means, said first radiant energy reflector means also defining a transmissive aperture;
- second radiant energy reflector means having a reflective surface and defining a focal point spaced from said reflective surface of said second radiant energy reflector means, said second radiant energy reflector means also defining a transmissive aperture aligned with the transmissive aperture of said first radiant energy reflector means;
- said reflective surface of said first radiant energy reflector means being oriented facing said reflective surface of said second radiant energy reflector means and being spaced from said reflective surface of said second radiant energy reflector means by a predetermined distance such that said focal point of said first radiant energy reflector means coincides with said aperture in said second radiant energy reflector means;
- sensor means, responsive to radiant energy appearing at said aperture in said second radiant energy reflector means, for producing a corresponding electrical signal representative of said radiant energy; and
- transmissive aperture covering means for covering said transmissive aperture in said first radiant energy reflector means, said covering means selected from the group consisting of a perforated material, a woven gas pervious material and a slotted material.
- 2. A sensor apparatus according to claim 1 further comprising coolant gas delivery means for directing coolant gas toward said transmissive aperture covering means and through the transmissive aperture defined by said first radiant energy reflector means.
- 3. A sensor apparatus according to claim 1 further comprising filter means positioned within said transmissive aperture defined by said first radiant energy reflector means for only permitting selected radiation to pass therethrough such that any unselected radiation is inhibited from passing therethrough.
- 4. A sensor apparatus according to claim 1 wherein said sensor means is positioned at the aperture defined by said second radiant energy reflector means.
- 5. A sensor apparatus according to claim 1 wherein said first and second radiant energy reflector means are substantially identical, and wherein each of said first and second radiant energy reflector means is paraboloid in geometry.
- 6. A sensor apparatus according to claim 1 wherein said first and second radiant energy reflector means are substantially identical, and wherein each of said first and second radiant energy reflector means comprises a Fresnel mirror.
- 7. A sensor apparatus according to claim 1 wherein one of said first and second radiant energy reflector means is paraboloid in geometry, and wherein the other of said first and second radiant energy reflector means comprises a Fresnel mirror.
- 8. A sensor apparatus according to claim 1 wherein said sensor means comprises:
- a lens; and
- a sensor,
- said lens being located in said aperture defined by said second radiant energy reflector means at said focal point of said first radiant energy reflector means for focusing images on said sensor.
- 9. A sensor apparatus according to claim 8 wherein said sensor means further comprises support means for rotatably positioning said lens.
- 10. A sensor apparatus according to claim 1 further comprising a fiber optic cable coupled at one end to said sensor means.
- 11. A sensor apparatus comprising:
- a first radiant energy reflector having a reflective surface and defining a focal point spaced from said reflective surface of said first radiant energy reflector, said first radiant energy reflector also defining a transmissive aperture;
- a second radiant energy reflector having a reflective surface and defining a focal point spaced from said reflective surface of said second radiant energy reflector, said second radiant energy reflector also defining a transmissive aperture aligned with the transmissive aperture of said first radiant energy reflector;
- said reflective surface of said first radiant energy reflector being oriented facing said reflective surface of said second radiant energy reflector and being spaced from said reflective surface of said second radiant energy reflector by a predetermined distance such that said focal point of said first radiant energy reflector coincides with said aperture in said second radiant energy reflector;
- a sensor, responsive to radiant energy appearing at said aperture defined by said second radiant energy reflector, for producing a corresponding electrical signal representative of said radiant energy;
- a transmissive aperture covering for covering said transmissive aperture defined by said first radiant energy reflector, thereby protecting said sensor; and
- a coolant gas source for directing coolant gas toward said transmissive aperture covering and through the transmissive aperture defined by said first radiant energy reflector.
- 12. A sensor apparatus according to claim 11 wherein said transmissive aperture covering is selected from the group consisting of a perforated material, a woven gas pervious material and a slotted material.
- 13. A sensor apparatus according to claim 11 further comprising a filter positioned within said transmissive aperture defined by said first radiant energy reflector for only permitting selected radiation to pass therethrough such that any unselected radiation is inhibited from passing therethrough.
- 14. A sensor apparatus according to claim 11 wherein said sensor is positioned at the aperture defined by said second radiant energy reflector.
- 15. A sensor apparatus according to claim 11 wherein said first and second radiant energy reflectors are substantially identical, and wherein each of said first and second radiant energy reflectors is paraboloid in geometry.
- 16. A sensor apparatus according to claim 11 wherein said first and second radiant energy reflectors are substantially identical, and wherein each of said first and second radiant energy reflectors comprises a Fresnel mirror.
- 17. A sensor apparatus according to claim 11 wherein one of said first and second radiant energy reflectors is paraboloid in geometry and wherein the other of said first and second radiant energy reflectors comprises a Fresnel mirror.
- 18. A sensor apparatus according to claim 11 further comprising a fiber optic cable coupled at one end to said sensor.
- 19. A sensor apparatus comprising:
- a first radiant energy reflector having a reflective surface and defining a focal point spaced from said reflective surface of said first radiant energy reflector, said first radiant energy reflector also defining a transmissive aperture;
- a second radiant energy reflector having a reflective surface and defining a focal point spaced from said reflective surface of said second radiant energy reflector, said second radiant energy reflector also defining a transmissive aperture aligned with the transmissive aperture of said first radiant energy reflector;
- said reflective surface of said first radiant energy reflector being oriented facing said reflective surface of said second radiant energy reflector and being spaced from said reflective surface of said second radiant energy reflector by a predetermined distance such that said focal point of said first radiant energy reflector coincides with said aperture in said second radiant energy reflector;
- a sensor, responsive to radiant energy appearing at said aperture defined by said second radiant energy reflector, for producing a corresponding electrical signal representative of said radiant energy;
- a transmissive aperture covering for covering said transmissive aperture defined by said first radiant energy reflector, thereby protecting said sensor; and
- a rotatable lens, disposed within the transmissive aperture defined by at least one of said first and second radiant energy reflectors, for selecting a field of view within a broader field of regard.
RELATED APPLICATIONS
This application is a divisional of U.S. patent application Ser. No. 08/278,941 filed Jul. 22, 1994, now U.S. Pat. No. 5,896,237.
US Referenced Citations (18)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0805238 |
Feb 1981 |
SUX |
Non-Patent Literature Citations (1)
Entry |
Folweiler, et al., Arc Image Furnace System For Electrical Conductivity And Thermal Expansion Measurements, The Review Of Scientific Instruments, vol. 36, No. 6, Jun. 1965, pp. 747-749. |
Divisions (1)
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Number |
Date |
Country |
Parent |
278941 |
Jul 1994 |
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