IP Library Granted Patent US 8,269,971
Granted Patent B1
US 8,269,971 · App. 12/617,210 · Granted Sep 18, 2012

System and method for simultaneous detection of a gas using a mode-locked based transmitter

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Quick Facts
Patent No.
US 8,269,971
App. No.
12/617,210
Granted
Sep 18, 2012
Kind
B1
Abstract

A remote sensing system includes a transmitter for generating multiple beams of light; a combiner for combining the multiple beams of light and directing the combined multiple beams toward a target of multiple gases; and a receiver for receiving the combined multiple beams of light from the target. The first and second transmitted beams of light include, respectively, first and second sets of multiple distinct wavelengths that are simultaneously transmitted toward the target. The receiver receives the multiple distinct wavelengths, and simultaneously detects an intensity of each received wavelength. The first set of multiple distinct wavelengths is selected based on absorption characteristics of a first species of gas, and the second set of multiple distinct wavelengths is selected based on absorption characteristics of a second species of gas. The transmitter includes first and second mode-locked based lasers for generating, respectively, the first and second sets of distinct multiple wavelengths. The receiver includes first and second pixel arrays for detecting, respectively, the first and second sets of distinct multiple wavelengths.

Claims (72)

1. A remote sensing system comprising:

a transmitter for transmitting a single beam of light toward a target, and

a receiver for receiving the single beam of light from the target,

wherein the transmitted single beam of light includes multiple distinct wavelengths that are simultaneously transmitted toward the target, and

the receiver is configured to simultaneously receive the multiple distinct wavelengths, and detect an intensity of each received wavelength;

the system further including:

a photodiode, connected in parallel with the receiver, for detecting intensity levels of the received single beam of light,

an integrator for integrating the detected intensity levels, and

a saturation prevention module for resetting the receiver upon reaching an intensity level by the integrator,

wherein the saturation prevention module is configured to prevent saturation of the intensity levels of the multiple distinct wavelengths detected by the receiver.

2. The remote sensing system of claim 1 wherein

the target includes at least one species of gas, and

the multiple distinct wavelengths are selected based on absorption characteristics or scattering characteristics of the one species of gas.

3. The remote sensing system of claim 2 wherein

at least one of the multiple distinct wavelengths is selected at a center of a wavelength distribution curve depicting the absorption characteristics of the species of gas, the center defined as an online wavelength, and

at least another of the multiple distinct wavelengths is selected at a wavelength location that is away from the wavelengths absorbed by the species of gas, the wavelength location defined as an offline wavelength.

4. The remote sensing system of claim 3 wherein

yet another of the multiple distinct wavelengths is selected at a location that is between the at least one online wavelength and the at least one offline wavelength.

5. The remote sensing system of claim 1 wherein

the transmitter includes a mode-locked based laser for generating the distinct multiple wavelengths in the single beam of light, and

the receiver includes a pixel array for detecting the distinct multiple wavelengths in the single beam of light.

6. The remote sensing system of claim 5 wherein

the receiver includes a diffraction grating for separating the distinct multiple wavelengths in the single beam of light, and

at least one lens or mirror is interposed between the diffraction grating and the pixel array for focusing the distinct multiple wavelengths onto the pixel array.

7. The remote sensing system of claim 5 including

a processor for receiving image intensity data from the pixel array and determining an identity of the target based on the detected distinct multiple wavelengths.

8. The remote sensing system of claim 1 including

a gas cell for receiving and testing a sample of the multiple distinct wavelengths in the single beam of light, and

means for adjusting the multiple distinct wavelengths, based on test results of the gas cell.

9. The remote sensing system of claim 1 wherein

the target includes (a) either carbon dioxide or methane, each dependent on a differential absorption wavelength, and/or (b) an aerosol dependent on differential scattering of at least one wavelength.

10. A remote sensing system comprising:

a transmitter for generating multiple beams of light,

a combiner for combining the multiple beams of light and directing the combined multiple beams toward a target, and

a receiver for receiving the combined multiple beams of light from the target,

wherein a first transmitted beam of light includes a first set of multiple distinct wavelengths that are simultaneously transmitted toward the target,

a second transmitted beam of light includes a second set of multiple distinct wavelengths that are simultaneously transmitted toward the target, and

the receiver is configured to simultaneously receive the multiple distinct wavelengths, and detect an intensity of each received wavelength.

11. The remote sensing system of claim 10 wherein the target includes at least two species of gas, and

the first set of multiple distinct wavelengths are selected based on absorption characteristics or scattering characteristics of a first species of gas, and

the second set of multiple distinct wavelengths are selected based on absorption characteristics or scattering characteristics of a second species of gas.

12. The remote sensing system of claim 11 wherein

the transmitter includes a first mode-locked based laser for generating the first set of distinct multiple wavelengths in the first transmitted beam of light,

the transmitter includes a second mode-locked based laser for generating the second set of distinct multiple wavelengths in the second transmitted beam of light,

the receiver includes a first pixel array for detecting the first set of distinct multiple wavelengths, and

the receiver includes a second pixel array for detecting the second set of distinct multiple wavelengths.

13. The remote sensing system of claim 12 wherein

the receiver includes a first diffraction grating for separating the first set of distinct multiple wavelengths, and

the receiver includes a second diffraction grating for separating the second set of distinct multiple wavelengths.

14. The remote sensing system of claim 10 wherein the combiner includes

first and second divergent setting telescopes for directing the first beam and second beam, respectively, toward a beam splitting cube, and

focusing the first and second beams to deliver the combined beam as a predetermined sized spot on the target.

15. A method for remotely detecting a plume of gas comprising the steps of:

(a) transmitting multiple beams of light toward the plume, and

(b) receiving the multiple beams of light from the plume,

wherein the step of transmitting includes

simultaneously transmitting multiple distinct wavelengths in a first beam and a second beam toward the plume, and

the step of receiving includes

simultaneously receiving the multiple distinct wavelengths from the first and second beams, and

simultaneously detecting an intensity of each received wavelength.

16. The method of claim 15 wherein the step of transmitting includes

selecting and generating the multiple distinct wavelengths based on absorption characteristics of the plume of gas.

17. The method of claim 16 wherein

at least one of the multiple distinct wavelengths is selected at a center of a wavelength distribution curve depicting the absorption characteristics of the plume of gas, the center defined as an online wavelength, and

at least another of the multiple distinct wavelengths is selected at a wavelength location that is away from the wavelengths absorbed by the plume of gas, the wavelength location defined as an offline wavelength.

18. The method of claim 17 wherein

yet another of the multiple distinct wavelengths is selected at a location that is between the at least one online wavelength and the at least one offline wavelength.

19. The method of claim 15 wherein

the step of transmitting includes using a mode-locked based laser for generating the distinct multiple wavelengths, and

the step of receiving includes

separating the distinct multiple wavelength by using a diffraction grating, and

imaging the separated distinct multiple wavelengths by using a pixel array.

Assignments (3)
MERGER Recorded Jul 1, 2016
From: EXELIS INC.
To: HARRIS CORPORATION
Reel/Frame 039362/0534 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2012
From: ITT MANUFACTURING ENTERPRISES, LLC (FORMERLY KNOWN AS ITT MANUFACTURING ENTERPRISES, INC.)
To: EXELIS, INC.
Reel/Frame 027604/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2009
From: MARSH, WAVERLY DICKSON; STEARNS, STEVEN VINCENT
To: ITT MANUFACTURING ENTERPRISES, INC.
Reel/Frame 023508/0689 →