Claims
- 1. A gas sensor, comprising:
- (a) a radiation source;
- (b) a first radiation detector spaced from said source, said first radiation detector detecting radiation of a first wavelength from said radiation source, said first wavelength corresponding to an absorption band of a gas to be sensed;
- (c) a second radiation detector spaced from said source, said second radiation detector detecting radiation of a second wavelength from said radiation source, said second wavelength a reference wavelength;
- (d) a first differencer with inputs from said first and second detectors, an output of said first differencer being the difference of the outputs of said first and second detectors, whereby the gas absorption is determined;
- (e) a second differencer with inputs from said second detector and a reference, an output of said second differencer being the difference of the output of said second detector and said reference, whereby change in radiation from said source is determined; and
- (f) a combiner with inputs being the outputs of the first and second differencers, an output of said combiner being the product of the outputs of the first and second differencers, whereby the gas absorption determination is adjusted for source radiation intensity.
- 2. The sensor of claim 1, wherein:
- (a) said first and second differencers are difference amplifiers; and
- (b) said combiner is an automatic gain control amplifier.
- 3. The sensor of claim 1, wherein:
- (a) said first and second radiation detectors include bolometers and bandpass filters; and
- (b) said wavelengths correspond to infrared radiation.
- 4. A sensor, comprising:
- (a) a radiation source;
- (b) a first radiation detector, said first radiation detector detecting radiation of a first wavelength from said radiation source;
- (c) a second radiation detector, said second radiation detector detecting radiation of a second wavelength from said radiation source;
- (d) a first differencer with inputs from said first and second detectors, an output of said first differencer being the difference of the outputs of said first and second detectors;
- (e) a second differencer with inputs from said second detector and a reference, an output of said second differencer being the difference of the output of said second detector and said reference; and
- (f) a controller with inputs being the outputs of the first and second differencers, an output of said controller being the product of the outputs of the first and second differencers.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims priority from provisional application Ser. No. 60/001,322, filed Jul. 21, 1995. The following co-filed and copending patent applications disclose related subject matter and are assigned to the assignee of this application: U.S. patent application Ser. Nos. 08/684,601; 08/690,277; 08/684,606; 08/683,997; 08/684,157; 08/684,605; 08/690,274; 08/684,600; 08/683,997; 08/684,367; 08/690,273; 08/684,121; 08/684,959; 08/684,654; 08/690,276; and 08/690,275.
US Referenced Citations (5)
Number |
Name |
Date |
Kind |
5010251 |
Grinberg et al. |
Apr 1991 |
|
5013920 |
Asano et al. |
May 1991 |
|
5300915 |
Higashi et al. |
Apr 1994 |
|
5399897 |
Cunningham et al. |
Mar 1995 |
|
5689114 |
Miyazaki et al. |
Nov 1997 |
|
Foreign Referenced Citations (2)
Number |
Date |
Country |
0 354 369 A2 |
Feb 1990 |
EPX |
0 534 768 A1 |
Mar 1993 |
EPX |
Non-Patent Literature Citations (1)
Entry |
High-Performance Infrared Thermal Imaging with Monolithic Silicon Focal Planes Operating at Room Temperature, Proceedings of the International Electron Device Meeting, Dec. 5-8, 1993; pp. 175-177. |