二氧化碳
激光雷达
吸收(声学)
材料科学
差速器(机械装置)
拨号
环境科学
遥感
化学
物理
声学
工程类
航空航天工程
地理
复合材料
有机化学
作者
Tao Zhu,Boyang Xue,Hui Li,Zhangjun Wang,Chao Chen
摘要
ABSTRACT Carbon dioxide (CO 2 ) is a major greenhouse gas contributing to climate change. Especially, the real‐time monitoring of its spatial and temporal variations have drawn significant attention in the past few decades. In the present work, we proposed a Differential Absorption LiDAR (DIAL) system for the CO 2 concentration profiling. By employing a dual‐wavelength 1.5 μm fiber laser and an InGaAs/InP negative feedback avalanche diode (NFAD) based free‐running single‐photon detector (SPD), it allowed the system to be compact, with low power consumptions. Comparisons between different laser pulse durations, laser pulse energies and peak powers were performed in terms of the signal‐to‐noise ratio ( SNR ) of the backscattering signals of the LiDAR. It is shown that the three parameters have a combined effect on the signal response behavior. After the optimization of the laser pulse energy, the signal integration time, and the workflow of CO 2 profile retrieval, the analytical performance of the LiDAR system has been evaluated. The temporal evolution of the measured CO 2 concentration nicely coincides with the values from a standard CO 2 detector, with a correlation coefficient higher than 0.7 and a relative standard deviation within 6.8%. Subsequently, vertical observations were carried out to obtain the height‐time plot of the CO 2 concentrations, with a high spatial‐temporal resolution of 25 m and 15 min, respectively. The results indicated a diurnal variation of CO 2 concentration at the nearshore region. This compact DIAL system shows promising analytical potential streamlining online monitoring of atmospheric CO 2 over the ocean based on buoy platforms.
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