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Immunity to Laser Power Variation in a DFB Diode Laser Based Optical Gas Sensor Using a Division Process

机译:在基于DFB二极管激光器的光学气体传感器中使用分工过程来抵抗激光器功率变化

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摘要

The division process used in a DFB diode laser-based optical gas sensor was studied to improve the immunity to laser power variation. Residual amplitude modulation (RAM) in wavelength modulation spectroscopy (WMS) detection was eliminated by intensity normalization using a division process. As a result the detected harmonic signals showed a significant improvement in line shape. For the first harmonic (1f) signal, Bias was improved from 38.7% to 1.2%; Baseline Difference was improved from 2.7% to 0.69% and Asymmetry was improved from 15.4% to 0.22%. For the second harmonic (2f) signal, the Asymmetry Coefficient was improved from 103% to 5.1%. Moreover the division process can further suppress the influence of unstable laser power. As a result, for the 1f signal, stable detection with a variation coefficient of 0.59% was obtained over a wide dynamic range (0.38–8.1 mW). For the 2f signal, stable detection with a variation coefficient of 0.53% was obtained from 0.64 mW to 8.27 mW. The test results showed a good agreement with the theoretical analysis and the proposed method has considerable potential application in gas sensing.
机译:研究了基于DFB二极管激光器的光学气体传感器的分割过程,以提高对激光功率变化的抵抗力。波长调制光谱(WMS)检测中的残留幅度调制(RAM)通过使用除法的强度归一化得以消除。结果,检测到的谐波信号显示出线形的显着改善。对于一次谐波(1f)信号,偏置从38.7%提高到1.2%;基线差异从2.7%提高到0.69%,不对称性从15.4%提高到0.22%。对于二次谐波(2f)信号,不对称系数从103%提高到5.1%。而且,分割过程可以进一步抑制不稳定的激光功率的影响。结果,对于1f信号,在宽动态范围(0.38–8.1 mW)内获得了稳定的检测,变异系数为0.59%。对于2f信号,从0.64 mW至8.27 mW可获得稳定的检测,变异系数为0.53%。测试结果与理论分析吻合良好,所提出的方法在气体传感领域具有广阔的应用前景。

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