IP Library › Granted Patent US 12,523,641
Granted Patent B2
US 12,523,641 · App. 17/848,067 · Granted Jan 13, 2026

Gas analyzer calibration

Inventors: Chong Tao (Billerica, MA); Aniruddha S. Weling (Wayland, MA)
Assignee: Baker Hughes Holdings LLC
G01N33/0006G01N21/39G01N2021/399G01N2201/062
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Quick Facts
Patent No.
US 12,523,641
App. No.
17/848,067
Granted
Jan 13, 2026
Kind
B2
Abstract

A calibration method includes receiving data characterizing a first pressure broadening coefficient, a second pressure broadening coefficient and a third pressure broadening coefficient of the target gas absorption associated with a first background gas, a second background gas and a third background gas, respectively. The method further includes, determining a molar ratio associated with the second background gas and the third background such that an effective pressure broadening coefficient associated with a target gas mixture including the second background gas and the third background gas mixed at the determined molar ratio is within a predetermined threshold of the first broadening coefficient. The target gas mixture further includes a target gas. The method also includes calibrating a gas analyzer using the target gas mixture to replace the calibration of the target in the first background gas. The calibration is based on absorption of electromagnetic radiation by the target gas in the target gas mixture.

Claims (47)

1 . A method of calibrating a gas analyzer using a target gas mixture comprising a target gas, a second background gas and third background gas, the method comprising:

receiving data characterizing a first pressure broadening coefficient of the target gas absorption associated with a first background gas, a second pressure broadening coefficient of the target gas absorption associated with the second background gas, and a third pressure broadening coefficient of the target gas absorption associated with the third background gas;

determining a molar ratio associated with the second background gas and the third background gas, such that an effective pressure broadening coefficient associated with the target gas mixture is within a predetermined threshold of the first broadening coefficient;

irradiating the target gas mixture with electromagnetic radiation by an electromagnetic radiation source of the gas analyzer;

detecting an absorption of electromagnetic radiation by the target gas in the target gas mixture; and

calibrating the gas analyzer using the target gas mixture based on the absorption of electromagnetic radiation by the target gas in the target gas mixture to replace the calibration of the target gas in the first background gas.

2 . The method of claim 1 , further comprising:

receiving data characterizing a first absorption spectrum associated with a first gas mixture including the target gas and the first background gas, a second absorption spectrum associated with a second gas mixture including the target gas and the second background gas, and a third absorption spectrum associated with a third gas mixture including the target gas and the third background gas;

calculating an effective absorption spectrum associated with the target gas mixture based on the second absorption spectrum and the third absorption spectrum provided there is no chemical interaction between them; and

determining that the target gas mixture is suitable for calibration of the gas analyzer based on comparison of the first absorption spectrum and the effective absorption spectrum.

3 . The method of claim 2 , wherein determining that the target gas mixture is suitable for calibration includes comparing at least a first absorption value from the first absorption spectrum and a second absorption value from the effective absorption spectrum, wherein the first absorption value and the second absorption value are associated with a first wavelength of the electromagnetic radiation.

4 . The method of claim 1 , further comprising:

selecting the second background gas and the third background gas based on the second pressure broadening coefficient and the third pressure broadening coefficient, wherein the second pressure broadening coefficient is less than the first pressure broadening coefficient and the third pressure broadening coefficient is greater than the first pressure broadening coefficient.

5 . The method of claim 1 , wherein the concentration of target gas in the first background gas is the same as the concentration of the target gas in the target gas mixture.

6 . The method of claim 1 , wherein the electromagnetic radiation source is one of a narrow-band light source or a broad-band light source.

7 . The method of claim 6 , wherein the narrow-band light source includes a laser, and the broad-band light source includes one of a light emitting diode or a lamp.

8 . The method of claim 1 , wherein the electromagnetic radiation generated by the narrow band light source is a collimated laser beam.

9 . A system for calibrating a gas analyzer using a target gas mixture comprising a target gas, a second background gas and third background gas, the system comprising:

the gas analyzer, wherein the gas analyzer comprises an electromagnetic radiation source;

at least one data processor; and

memory coupled to the at least one data processor, the memory storing instructions to cause at least one data processor to perform operations comprising:

receiving data characterizing a first pressure broadening coefficient of the target gas absorption associated with a first background gas, a second pressure broadening coefficient of the target gas absorption associated with the second background gas, and a third pressure broadening coefficient of the target gas absorption associated with the third background gas;

determining a molar ratio associated with the second background gas and the third background gas, such that an effective pressure broadening coefficient associated with the target gas mixture is within a predetermined threshold of the first broadening coefficient;

controlling the electromagnetic radiation source to irradiate the target gas mixture with electromagnetic radiation;

detecting an absorption of electromagnetic radiation by the target gas in the target gas mixture; and

calibrating the gas analyzer using the target gas mixture based on the absorption of electromagnetic radiation by the target gas in the target gas mixture to replace the calibration of the target gas in the first background gas.

10 . The system of claim 9 , wherein the operations further comprising:

receiving data characterizing a first absorption spectrum associated with a first gas mixture including the target gas and the first background gas, a second absorption spectrum associated with a second gas mixture including the target gas and the second background gas, and a third absorption spectrum associated with a third gas mixture including the target gas and the third background gas;

calculating an effective absorption spectrum associated with the target gas mixture based on the second absorption spectrum and the third absorption spectrum provided there is no chemical interaction between them; and

determining that the target gas mixture is suitable for calibration of the gas analyzer based on comparison of the first absorption spectrum and the effective absorption spectrum.

11 . The system of claim 10 , wherein determining that the target gas mixture is suitable for calibration includes comparing at least a first absorption value from the first absorption spectrum and a second absorption value from the effective absorption spectrum, wherein the first absorption value and the second absorption value are associated with a first wavelength of the electromagnetic radiation.

12 . The system of claim 9 , wherein the operations further comprising:

selecting the second background gas and the third background gas based on the second pressure broadening coefficient and the third pressure broadening coefficient, wherein the second pressure broadening coefficient is less than the first pressure broadening coefficient and the third pressure broadening coefficient is greater than the first pressure broadening coefficient.

13 . The system of claim 9 , wherein the concentration of target gas in the first background gas is the same as the concentration of the target gas in the target gas mixture.

14 . The system of claim 9 , wherein the electromagnetic radiation source is one of a narrow-band light source and a broad-band light source.

15 . The system of claim 14 , wherein the narrow-band light source includes a laser, and the broad-band light source includes one of a light emitting diode and a lamp.

16 . The system of claim 9 , wherein the electromagnetic radiation generated by the narrow band light source is a collimated laser beam.

17 . A computer program product comprising a non-transitory machine-readable medium storing instructions for calibrating a gas analyzer using a target gas mixture comprising a target gas, a second background gas and third background gas, that, when executed by at least one programmable processor that comprises at least one physical core and a plurality of logical cores, cause at least one programmable processor to perform operations comprising:

receiving data characterizing a first pressure broadening coefficient of the target gas absorption associated with a first background gas, a second pressure broadening coefficient of the target gas absorption associated with the second background gas, and a third pressure broadening coefficient of the target gas absorption associated with the third background gas;

determining a molar ratio associated with the second background gas and the third background gas, such that an effective pressure broadening coefficient associated with the target gas mixture is within a predetermined threshold of the first broadening coefficient;

controlling an electromagnetic radiation source of the gas analyzer to irradiate the target gas mixture with electromagnetic radiation;

detecting an absorption of electromagnetic radiation by the target gas in the target gas mixture; and

calibrating the gas analyzer using the target gas mixture based on the absorption of electromagnetic radiation by the target gas in the target gas mixture to replace the calibration of the target gas in the first background gas.

18 . The computer program product of claim 17 , wherein the operations further comprising:

receiving data characterizing a first absorption spectrum associated with a first gas mixture including the target gas and the first background gas, a second absorption spectrum associated with a second gas mixture including the target gas and the second background gas, and a third absorption spectrum associated with a third gas mixture including the target gas and the third background gas;

calculating an effective absorption spectrum associated with the target gas mixture based on the second absorption spectrum and the third absorption spectrum provided there is no chemical interaction between them; and

determining that the target gas mixture is suitable for calibration of the gas analyzer based on comparison of the first absorption spectrum and the effective absorption spectrum.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2026
From: BAKER HUGHES HOLDINGS LLC
To: PANAMETRICS LLC
Reel/Frame 076077/0194 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2022
From: TAO, CHONG; WELING, ANIRUDDHA S.
To: BAKER HUGHES HOLDINGS LLC
Reel/Frame 061038/0573 →
Continuity (1)
Related Publication 20230417717A1 · Dec 28, 2023
References Cited (3)
US 9347877B2 · Hirata · 2016 [cited by examiner]
US 11280724B2 · Brauer · 2022 [cited by examiner]
US 11287371B2 · Shie · 2022 [cited by examiner]