IP Library Granted Patent US 11,768,295
Granted Patent B2
US 11,768,295 · App. 17/504,998 · Granted Sep 26, 2023

High spectral resolution Scheimpflug LIDAR

Inventor: Mikkel Brydegaard (Lund, SE)
Assignee: Beamonics AB
G01S17/95G01N21/39G01N21/45G01N21/47G01N21/532G01S7/481G01N2021/398G01N2021/399G01N2021/4709
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Quick Facts
Patent No.
US 11,768,295
App. No.
17/504,998
Granted
Sep 26, 2023
Kind
B2
Abstract

A method is provided for detecting a property of a gas comprising: emitting a light, comprising a plurality of wavelengths covering a plurality of absorption lines of the gas, along a first axis, the light being scattered by particles of the gas resulting in a scattered light, generating a sensor image using a detection arrangement configured to receive the scattered light and comprising: an optical arrangement having an optical plane and being configured to direct the scattered light on to a light sensor, the light sensor having at least one pixel columns, wherein the pixel columns are aligned to an image plane and configured to output a sensor image, wherein the first axis, the optical plane, and the image plane intersect such that a Scheimpflug condition is achieved, determining, from the sensor image, properties of the gas at a plurality of positions along the first axis.

Claims (49)

1. A method for detecting a property of a gas comprising:

emitting a light, comprising at least one wavelength covering at least one absorption line of the gas, along a first axis, the light being scattered by particles of the gas resulting in a scattered light;

generating a sensor image using a detection arrangement configured to receive the scattered light and comprising:

an optical arrangement having an optical plane and being configured to direct the scattered light on to a light sensor; and

the light sensor having at least one pixel column, wherein the at least one pixel column is aligned to an image plane and configured to output the sensor image, wherein the first axis, the optical plane, and the image plane intersect such that a Scheimpflug condition is achieved;

determining, from the sensor image at least one gas specific absorption line; and

determining from the at least one gas specific absorption line, properties of the gas at a plurality of positions along the first axis.

2. The method according to claim 1 , wherein the emitting the light comprises emitting the light from a broadband source.

3. The method according to claim 2 , wherein the broadband source is a broadband multimode source.

4. The method according to claim 1 , wherein the at least one absorption line of the gas is at least one absorption line of hydrogen, methane, ammonia, carbon dioxide, oxygen, water, nitric oxide, nitrous oxide, or nitrogen dioxide.

5. The method according to claim 1 , wherein the first axis, the optical plane, and the image plane intersect to fulfill the Hinge rule.

6. The method of claim 1 , wherein the scattered light is distributed across the light sensor such that photons of the scattered light are distributed along the at least one pixel column and/or pixel rows of the light sensor according to a position along the first axis where the photons were scattered.

7. The method of claim 1 , wherein the optical arrangement is configured to spectrally distribute the scattered light across the light sensor.

8. The method of claim 1 , wherein the light sensor comprises a plurality of pixel rows and wherein the scattered light is distributed across the light sensor such that photons of the scattered light are distributed along the plurality of pixel rows and/or the at least one pixel column of the light sensor according to a wavelength of the photons.

9. The method of claim 8 , wherein the scattered light is distributed across the light sensor via a spectrometer or an interferometer.

10. The method of claim 9 , wherein the spectrometer or the interferometer comprises a dispersive spectrometer, a virtually imaged phase array, or a Fabry-Perot cavity.

11. The method of claim 1 , wherein a concentration of the gas is determined at one or more positions along the first axis from an attenuation of at least one spectral band of the scattered light received at the light sensor.

12. The method of claim 11 , wherein the concentration of the gas is determined from an integral of the attenuation of the at least one spectral band with respect to the one or more positions along the first axis.

13. The method of claim 11 , wherein the concentration of the gas is determined at the one or more positions along the first axis from a ratio between an attenuation of at least two absorption lines of the scattered light received at the light sensor.

14. The method of claim 1 , wherein a temperature of the gas is determined at one or more positions along the first axis from a ratio between an attenuation of at least two absorption lines of the scattered light received at the light sensor.

15. The method of claim 1 , wherein a temperature and/or pressure of the gas is determined based on a fitting of a gas absorption profile to at least two spectral bands of the scattered light received at the light sensor.

16. The method of claim 1 , wherein a concentration, a temperature or a pressure of the gas is determined based on a ratio of at least two spectral bands and a derivative with respect to a position of the plurality of positions along the first axis.

17. The method of claim 1 , wherein emitted light is spectrally comprised to cover between 2 and 800 elastic spectral bands.

18. The method of claim 1 , wherein said determining properties of the gas from the sensor image is performed according to a differential absorption lidar process.

19. A device for detecting a property of a gas comprising:

a light source configured to emit a light covering at least one absorption line of the gas along a first axis, the light being scattered by particles of the gas resulting in a scattered light;

a light detection arrangement comprising:

an optical arrangement having an optical plane and being configured to direct the scattered light on to a light sensor; and

the light sensor having a plurality of pixel columns, wherein the plurality of pixel columns are aligned to an image plane and configured to output a sensor image, wherein the first axis, the optical plane, and the image plane intersect such that a Scheimpflug condition is achieved; and

the device being configured to determine, from the sensor image, at least one gas specific absorption line and determine, from the at least one gas specific absorption line, properties of the gas at a plurality of positions along the first axis.

20. The device of claim 19 , wherein the light source is a single mode tuneable diode laser, and wherein the sensor image is calibrated by:

emitting a light having a first wavelength; and

calibrating the sensor image according to the first wavelength.

21. The device of claim 19 , wherein the light source is a multi-mode diode laser, and wherein the sensor image is calibrated by:

emitting a light having a plurality of spectral bands; and

calibrating the sensor image by matching a plurality of intrinsic spectral positions of absorption line profiles of the gas to the absorption lines indicated in a sensor signal.

22. A method for detecting a property of a gas comprising:

emitting a light, comprising at least one wavelength covering at least one absorption line of the gas, along a first axis, the light being scattered by particles of the gas resulting in a scattered light;

generating a sensor image using a detection arrangement configured to receive the scattered light and comprising:

an optical arrangement having an optical plane and being configured to direct the scattered light on to a light sensor; and

the light sensor having at least one pixel column and at least one pixel row, wherein the at least one pixel column and the at least one pixel row are aligned to an image plane and configured to output the sensor image, wherein the first axis, the optical plane, and the image plane intersect such that the scattered light is distributed across the light sensor such that photons of the scattered light are distributed along the at least one pixel column and/or the at least one pixel row of the light sensor according to a position along the first axis where the photons were scattered;

determining, from the sensor image at least one gas specific absorption line; and

determining from the at least one gas specific absorption line, properties of the gas at a plurality of positions along the first axis.

23. A device for detecting a property of a gas comprising:

a light source configured to emit a light covering at least one absorption line of the gas along a first axis, the light being scattered by particles of the gas resulting in a scattered light;

a light detection arrangement comprising:

an optical arrangement having an optical plane and being configured to direct the scattered light on to a light sensor; and

the light sensor having a plurality of pixel columns and a plurality of pixel rows, wherein the plurality of pixel columns and the plurality of pixel rows are aligned to an image plane and configured to output a sensor image, wherein the first axis, the optical plane, and the image plane intersect such that photons of the scattered light are distributed along the plurality of pixel columns and/or the plurality of pixel rows of the light sensor according to a position along the first axis where the photons were scattered; and

the device is configured to determine, from the sensor image, at least one gas specific absorption line and determine, from the at least one gas specific absorption line, properties of the gas at a plurality of positions along the first axis.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2023
From: BRYDEGAARD, MIKKEL
To: NEOLUND AB
Reel/Frame 063366/0266 →
CHANGE OF NAME Recorded Apr 18, 2023
From: NEOLUND AB
To: BEAMONICS AB
Reel/Frame 063366/0983 →
Priority Claims (2)
SE 1730197-9 · Jul 14, 2017 · national
SE 1830093-9 · Mar 21, 2018 · national
Continuity (2)
Continuation 16623743
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