IP Library Granted Patent US 9,778,176
Granted Patent B2
US 9,778,176 · App. 14/406,431 · Granted Oct 3, 2017

Measurement of gaseous compound using spectroscopy

Inventors: Tapio Sorvajärvi (Lempäälä, FI); Juha Toivonen (Tampere, FI); Juha Roppo (Lempäälä, FI); Jaani Silvennoinen (Tampere, FI); Sonja Enestam (Turku, FI)
Assignee: VALMET TECHNOLOGIES OY
G01N21/39G01N21/631G01N33/0062G01N2201/06113
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Quick Facts
Patent No.
US 9,778,176
App. No.
14/406,431
Granted
Oct 3, 2017
Kind
B2
Abstract

The method includes guiding a light beam to a first optical path, the light beam being attenuated to an attenuated light beam and detecting a first value indicative of a first intensity of the attenuated light beam. The method further includes generating a last light pulse, dissociating at least part of the gas compound molecules (optionally excited) or dissociated parts thereof (optionally excited) on the first optical path to first part atoms, molecules, ions, or radicals, and to another part using the last light pulse, the light beam being further attenuated by absorption to the first part atoms, molecules, ions, or radicals on the first optical path. The method further includes detecting a second value indicative of a second intensity of the attenuated light beam and determining, using the first and second values, the gas compound content of the gas mixture. A gas compound measuring device measures uses the method.

Claims (72)

1. A method for measuring the content of a gas compound from a gas mixture, wherein the gas compound consists of gas compound molecules, the method comprising

generating a light beam, wherein the light beam comprises photons having a beam wavelength,

guiding the light beam to a first optical path, wherein

the first optical path runs through a space containing the gas mixture comprising the gas compound, whereby the light beam is attenuated to an attenuated light beam,

detecting a first value indicative of a first intensity of the attenuated light beam,

generating a last light pulse, wherein the last light pulse comprises photons having a first pulse wavelength, and optionally generating another light pulse, wherein

the light beam is monochromatic or essentially monochromatic having said beam wavelength, and

the last light pulse is monochromatic or essentially monochromatic having said first pulse wavelength, the method further comprising

guiding at least part of the last light pulse to a second optical path such that the second optical path is essentially parallel to the first optical path,

dissociating at least part of the gas compound molecules or at least part of excited gas compound molecules on the first optical path to at least two dissociated parts using the last light pulse or the another light pulse,

dissociating (i) at least part of the gas compound molecules, (ii) at least part of excited gas compound molecules, (iii) at least part of the dissociated parts, or (iv) at least part of the excited dissociated parts on the first optical path to first part atoms, molecules, ions, or radicals, and to another part using the last light pulse, whereby the light beam is further attenuated by absorption to the first part atoms, molecules, ions, or radicals on the first optical path,

selecting the beam wavelength such that it corresponds to the absorption profile of the first part,

detecting a second value indicative of a second intensity of the further attenuated light beam, and

determining, using the first value and the second value, the gas compound content of the gas mixture.

2. The method of claim 1 , comprising

dissociating at least part of (i) the gas compound molecules or (ii) excited gas compound molecules on the first optical path to first part atoms, molecules, ions, or radicals, and to another part using the last light pulse.

3. The method of claim 1 , comprising

generating the another light pulse, wherein the another light pulse comprises photons having a second pulse wavelength,

dissociating at least part of (i) the gas compound molecules or (ii) excited gas compound molecules on the first optical path to third part atoms, molecules, ions, or radicals, and to another part using the another light pulse, and

dissociating at least part of (i) the third part atoms, molecules, ions, or radicals or (ii) the excited third part atoms, molecules, ions, or radicals to the first part atoms, molecules, ions, or radicals, and to another part using the last light pulse.

4. The method of claim 1 , comprising

dissociating at least part of second gas compound molecules or at least part of excited second gas compound molecules on the first optical path to at least two dissociated parts,

generating a second light beam, wherein the second light beam comprises photons having a second beam wavelength,

detecting a third value indicative of a first intensity of an attenuated second light beam,

detecting a fourth value indicative of a second intensity of the attenuated second light beam, and

determining, using the third value and the fourth value, the content of the second gas compound content of the gas mixture.

5. The method of claim 1 , comprising

optionally detecting a third value indicative of an intensity of the attenuated light beam,

generating another light pulse, wherein the another light pulse comprises photons having another pulse wavelength,

dissociating at least part of (i) second gas compound molecules or (ii) excited second gas compound molecules on the first optical path using the another light pulse, whereby the light beam is further attenuated by absorption (i) to a dissociation product of the second gas compound molecules or (ii) to a dissociation product of the excited second gas compound molecules on the first optical path,

detecting a fourth value indicative of a second intensity of the further attenuated light beam,

determining, using the fourth value and at least one of the third value and the first value, the content of the second gas compound content of the gas mixture.

6. The method of claim 1 , wherein

the last light pulse comprises photons having the first pulse wavelength, wherein the first pulse wavelength is at most 430 nm and at least one of the photons is capable of exciting the gas compound molecule, the excited gas compound molecule, a dissociated part, or an excited dissociated part to a dissociative state having an energy of at least 2.88 eV above the ground state of the gas compound molecule or the ground state of the dissociated part and/or

the light beam comprises photons having the beam wavelength, wherein the beam wavelength is at most 1800 nm.

7. The method of claim 1 , wherein

the light beam has a first cross section,

the last light pulse has a second cross section, and

the second cross section is greater than the first cross section.

8. The method of claim 1 , wherein

the first optical path and the second optical path are essentially co-centric.

9. The method of claim 1 , comprising

producing the gas mixture in a thermal process, wherein the thermal process is one of combustion, pyrolysis, gasification, and torrefaction, wherein the gas mixture comprises the gas compound molecules.

10. A device for measuring the content of a gas compound from a gas mixture, wherein the gas compound consists of gas compound molecules, comprising

a light beam source, arranged to emit a light beam comprising photons having a beam wavelength and

a photodetector,

wherein

the light beam source is a laser,

a first optical path is arranged optically between the photodetector and the light beam source,

a space, through which the first optical path is arranged to run, is arranged to contain the gas mixture absorbing the light beam,

the light beam is arranged to be attenuated to an attenuated light beam by said absorption of the light beam, and

the photodetector is arranged to detect a first value indicative of a first intensity of the attenuated light beam, the device comprising

at least a first light pulse source, wherein

the first light pulse source is arranged to generate a last light pulse comprising photons having a first pulse wavelength, at least part of the photons dissociating at least part of (i) gas compound molecules, (ii) excited gas compound molecules, (iii) dissociated parts or (iv) excited dissociated parts on the first optical path to first part atoms, molecules, ions, or radicals, and to another part, wherein the light beam is further attenuated by absorption to first part atoms, molecules, ions, or radicals on the first optical path, wherein the dissociated parts have optionally been produced from the gas compound molecules by dissociation using at least another light pulse, wherein

the beam wavelength is selected such that it corresponds to the absorption profile of the first part,

the photodetector is arranged to detect a second value indicative of a second intensity of the further attenuated light beam, and the device comprises

a first optical element, wherein the first optical element is arranged (i) to guide the light beam to the first optical path and (ii) to guide the last light pulse to a second optical path, wherein (iii) the second optical path is essentially parallel to the first optical path, and

a processor arranged to determine, using the first value and the second value, the gas compound content in the gas mixture.

11. The device of claim 10 , wherein

the first light pulse source is arranged to generate the last light pulse comprising photons having a first pulse wavelength, at least part of the photons dissociating at least part of (i) gas compound molecules or (ii) excited gas compound molecules on the first optical path to the first part atoms, molecules, ions, or radicals, and to another part.

12. The device of claim 10 , wherein the device comprises

means for generating the another light pulse, wherein

the another light pulse comprises photons having a second pulse wavelength, at least part of the photons dissociating at least part of (i) gas compound molecules or (ii) excited gas compound molecules on the first optical path to third part atoms, molecules, ions, or radicals and to another part, and

the first light pulse source is arranged to generate the last light pulse comprising photons having a first pulse wavelength, at least part of the photons dissociating at least part of (i) the third part atoms, molecules, ions, or radicals or (ii) excited third part atoms, molecules, ions, or radicals to first part atoms, molecules, ions, or radicals, and to another part.

13. The device of claim 10 , wherein

the first light pulse source is a laser.

14. The device of claim 10 , wherein

the first optical path and the second optical path are essentially co-centric.

15. The device of claim 10 , wherein

the light beam source is arranged to emit a light beam having a first cross section, and

the first light pulse source is arranged to emit the last light pulse having a second cross section, such that

the second cross section is greater than the first cross section.

Assignments (2)
MERGER Recorded Feb 19, 2015
From: VALMET POWER OY
To: VALMET TECHNOLOGIES OY
Reel/Frame 035060/0798 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 20, 2015
From: SORVAJÄRVI, TAPIO; TOIVONEN, JUHA; ROPPO, JUHA; SILVENNOINEN, JAANI; ENESTAM, SONJA
To: VALMET POWER OY
Reel/Frame 034758/0518 →
Continuity (1)
Related Publication 20150138544A1 · May 21, 2015