Research on the Correction Algorithm for Ozone Inversion in Differential Absorption Lidar

Author:

Li Leyong12,Xie Chenbo1,Ji Jie12ORCID,Xing Kunming1

Affiliation:

1. State Key Laboratory of Laser Interaction with Matter, Anhui Institute of Optics and Fine Mechanics, HFIPS, Chinese Academy of Sciences, Hefei 230031, China

2. Science Island Branch of Graduate School, University of Science and Technology of China, Hefei 230026, China

Abstract

Due to the complex and variable nature of the atmospheric conditions, traditional multi-wavelength differential absorption lidar (DIAL) methods often suffer from significant errors when inverting ozone concentrations. As the detection range increases, there is a higher demand for Signal to Noise Ratio (SNR) in lidar signals. Based on this, the paper discusses the impact of different atmospheric factors on the accuracy of ozone concentration inversion. It also compares the advantages and disadvantages of the two-wavelength differential method and the three-wavelength dual-differential method under both noisy and noise-free conditions. Firstly, the errors caused by air molecular extinction, aerosol extinction, and backscatter terms in the inversion using the two-wavelength differential method were simulated. Secondly, the corrected inversion errors were obtained through direct correction and the introduction of a three-wavelength dual differential correction. Finally, addressing the issue of insufficient SNR in practical inversions, the inversion errors of the two correction methods were simulated by constructing lidar parameters and incorporating appropriate noise. The results indicate that the traditional two-wavelength differential algorithm is significantly affected by aerosols, making it more sensitive to aerosol concentration and structural changes. On the other hand, the three-wavelength dual differential algorithm requires a higher SNR in lidar signals. Therefore, we propose a novel strategy for inverting atmospheric ozone concentration, which prioritizes the use of the three-wavelength dual-differential method in regions with high SNR and high aerosol concentration. Conversely, the direct correction method utilizing the two-wavelength differential approach is used. This approach holds the potential for high-precision ozone concentration profile inversion under different atmospheric conditions.

Funder

Strategic Priority Research Program of the Chinese Academy of Sciences

Anhui Province science and technology major project

Publisher

MDPI AG

Reference36 articles.

1. Ozone trends: A review;Staehelin;Rev. Geophys.,2001

2. An estimate of regional and global O3 damage from precursor NOx and VOC emissions;Rabl;Environ. Int.,1998

3. Vegetation feedbacks during drought exacerbate ozone air pollution extremes in Europe;Lin;Nat. Clim. Chang.,2020

4. Tropospheric ozone and its precursors from the urban to the global scale from air quality to short-lived climate forcer;Monks;Atmos. Chem. Phys.,2015

5. Martin, P.E., and Sanford, T. (2011). Climate Change and Your Health: Rising Temperatures, Worsening Ozone Pollution, Union of Concerned Scientists.

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