Claims
- 1. A sensor apparatus comprising:a first mirror having a reflective surface and defining a focal point spaced from the reflective surface of said first mirror, said first mirror also defining a transmissive aperture through which radiant energy enters the sensor apparatus; a second mirror having a reflective surface and defining a focal point spaced from the reflective surface of said second mirror, said second mirror also defining a transmissive aperture aligned with the transmissive aperture of said first mirror through which radiant energy exits the sensor apparatus; wherein the reflective surface of said first mirror faces the reflective surface of said second mirror such that the focal point of each respective mirror coincides with the transmissive aperture of the other mirror such that the respective transmissive apertures are linearly aligned; wherein the reflective surface of at least one of said first and second mirrors comprises a bandpass material which only reflects radiant energy having a wavelength within at least one predetermined band of wavelengths and which absorbs radiant energy having a wavelength outside of the at least one predetermined band of wavelengths; and a sensor, responsive to radiant energy having a wavelength within the at least one predetermined band of wavelengths that appears at the transmissive aperture of said second mirror, for producing a corresponding electrical signal representative of the radiant energy.
- 2. A sensor apparatus according to claim 1 further comprising a coolant gas source for directing coolant gas through the transmissive aperture defined by said first mirror.
- 3. A sensor apparatus according to claim 1 wherein said sensor is positioned at the aperture defined by said second mirror.
- 4. A sensor apparatus according to claim 1 wherein said first and second mirrors are substantially identical, and wherein each of said first and second mirrors is paraboloid in geometry.
- 5. A sensor apparatus according to claim 1 wherein said first and second mirrors are substantially identical, and wherein each of said first and second mirrors comprises a Fresnel mirror.
- 6. A sensor apparatus according to claim 1 wherein one of said first and second mirrors is paraboloid in geometry, and wherein the other of said first and second mirrors comprises a Fresnel mirror.
- 7. A sensor apparatus according to claim 1 further comprising a fiber optic cable coupled at one end to said sensor.
- 8. A sensor apparatus according to claim 1 further comprising a rotatable lens, disposed within the transmissive aperture defined by at least one of said first and second mirrors, for selecting a field of view within a broader field of regard.
- 9. A sensor apparatus comprising:a first mirror having a reflective surface and defining a focal point spaced from the reflective surface of said first mirror, said first mirror also defining a transmissive aperture through which radiant energy enters the sensor apparatus; a second mirror having a reflective surface and defining a focal point spaced from the reflective surface of said second mirror, said second mirror also defining a transmissive aperture aligned with the transmissive aperture of said first mirror through which radiant energy exits the sensor apparatus; wherein the reflective surface of said first mirror faces the reflective surface of said second mirror such that the focal point of each respective mirror coincides with the transmissive aperture of the other mirror such that the respective transmissive apertures are linearly aligned; a bandpass material disposed between said first and second mirrors, said bandpass material allowing radiant energy having a wavelength within at least one predetermined band of wavelengths to pass therethrough while absorbing radiant energy having a wavelength outside of the at least one predetermined band of wavelengths; and a sensor, responsive to radiant energy having a wavelength within the at least one predetermined band of wavelengths that appears at the transmissive aperture of said second mirror, for producing a corresponding electrical signal representative of the radiant energy.
- 10. A sensor apparatus according to claim 8 further comprising a coolant gas source for directing coolant gas through the transmissive aperture defined by said first mirror.
- 11. A sensor apparatus according to claim 9 wherein said sensor is positioned at the aperture defined by said second mirror.
- 12. A sensor apparatus according to claim 9 wherein said first and second mirrors are substantially identical, and wherein each of said first and second mirrors is paraboloid in geometry.
- 13. A sensor apparatus according to claim 9 wherein said first and second mirrors are substantially identical, and wherein each of said first and second mirrors comprises a Fresnel mirror.
- 14. A sensor apparatus according to claim 8 wherein one of said first and second mirrors is paraboloid in geometry, and wherein the other of said first and second mirrors comprises a Fresnel mirror.
- 15. A sensor apparatus according to claim 9 further comprising a fiber optic cable coupled at one end to said sensor.
- 16. A sensor apparatus according to claim 9 further comprising a rotatable lens, disposed within the transmissive aperture defined by at least one of said first and second mirrors, 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 |
Aug 1981 |
SU |
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. |