光声光谱学
信号(编程语言)
光谱学
补偿(心理学)
检出限
干扰(通信)
温度测量
光声效应
振幅
材料科学
灵敏度(控制系统)
分析化学(期刊)
声学
化学
光学
生物医学中的光声成像
电子工程
物理
计算机科学
热力学
工程类
心理学
计算机网络
频道(广播)
色谱法
量子力学
精神分析
程序设计语言
作者
Weilin Ye,Wenxuan Luo,Weihao Liu,Jingsong Xiao,Ruibing Ye,Lin Qi,Q. Li,Lei Deng,Quanjie Li,Xiaodong Niu
摘要
Abstract Photoacoustic spectroscopy (PAS) is a highly sensitive optical detection technique for trace gases. However, PAS is sensitive to environmental factors such as temperature and pressure during actual measurement. In this paper, we study the interference characteristics of temperature and pressure in PAS gas detection. The influence of pressure and temperature on PAS is theoretically analyzed based on the basic principle of gas photoacoustic spectroscopy. The effect of different pressure and temperature conditions on the resonance frequency and signal amplitude of PAS is studied through COMSOL software simulation and validated through experiments. Results show that changes in temperature and pressure will affect the resonance frequency and signal amplitude of PAS, thereby impacting the system's sensitivity and accuracy. To reduce the impact of temperature on the PAS sensor, a temperature compensation model was derived based on experimental analysis. Real‐time temperature detection is used to compensate for the photoacoustic signal based on temperature changes, which can improve the accuracy and stability of photoacoustic spectroscopy gas detection. For 5% CO 2 , the photoacoustic signal and experimental temperature data were measured for 3612 s, and after temperature compensation, the detection limit was 0.0192% at an integration time of 365 s, which is 0.0128% higher than before temperature compensation. The system's normalized noise equivalent absorption coefficient is 3.30 × 10 −8 cm −1 WHz −1/2 . This research improves the accuracy and reliability of photoacoustic spectroscopy gas detection technology and provides useful references for temperature correction in similar gas detection fields.
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