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An Improved WMS-2f/1f Spectral Fitting Method Using Orthogonal Test in Initial Parameters Selection
Liezhao Luo1,2, Ting Li1,2, Jiangge Deng1,2
1School of Energy and Power Engineering, Beihang University, Beijing 100191, China.
This study introduces an improved spectral fitting method for wavelength modulation spectroscopy (WMS-2f/1f) to accurately measure gas temperature. Optimized initial parameters enhance fitting efficiency and accuracy for water vapor in air.
Area of Science:
- Spectroscopy
- Gas Sensing
- Physical Chemistry
Background:
- Wavelength modulation spectroscopy (WMS) is a sensitive technique for gas analysis.
- The WMS-2f/1f method offers improved signal-to-noise ratio for spectral measurements.
- Accurate initial parameter selection is crucial for efficient spectral fitting.
Purpose of the Study:
- To develop an improved WMS-2f/1f spectral fitting method.
- To enhance the efficiency and accuracy of spectral fitting using orthogonal test for initial parameter selection.
- To experimentally validate the proposed method for temperature measurement of H2O in air.
Main Methods:
- Implementation of an improved WMS-2f/1f spectral fitting method.
- Utilizing orthogonal test for optimizing initial spectral fitting parameters.
- Experimental validation using a gas cell with diluted H2O in air at 1 atm, 291K, and 0.7% concentration.
- Targeting a transition center wavelength near 1344 nm.
Main Results:
- Significant reduction in sum-square-error (SSE) between calculated and measured WMS-2f/1f spectra with optimized parameters.
- Faster convergence of the fitting routine compared to conventional methods.
- Accurate temperature measurements of water vapor, showing good agreement with true values.
Conclusions:
- The proposed WMS-2f/1f spectral fitting method with orthogonal test-based initial parameter optimization improves fitting efficiency and accuracy.
- This method provides a reliable approach for precise gas temperature measurements.
- The technique is validated for determining the temperature of diluted H2O in air.
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