Infrared and Laser Engineering, Volume. 52, Issue 1, 20220262(2023)

Influence of atmospheric models on the aerosol optical parameters inversion and classification

Yuanzu Wang1, Dongsong Sun1, Yuli Han1, Jun Zheng1, and Yiming Zhao2
Author Affiliations
  • 1School of Earth and Space Sciences, University of Science and Technology of China, Hefei 230026, China
  • 2Beijing Research Institute of Telemetry, Beijing 100076, China
  • show less
    References(32)

    [1] S A Ackerman, H Chung. Radiative effects of airborne dust on regional energy budgets at the top of the atmosphere. Journal of Applied Meteorology, 31, 223-233(1992).

    [2] G Y Shi, B Wang, H Zhang, et al. The radiative and climatic effects of atmospheric aerosols. Chinese Journal of Atmospheric Sciences, 32, 826-840(2008).

    [3] P Ge, T S Zhang, Y B Fu, et al. Aerosol optical properties in Beijing based on AERONET. Journal of Atmospheric and Environmental Optics, 16, 18-27(2021).

    [4] S Y Chen, X Nian, H Chen, et al. Observation and analysis of aerosol optical properties during pollution episodes in Beijing. Optical Thechnique, 47, 570-576(2021).

    [5] L X Ren, R G You, W X Lv, et al. The physical and chemical characteristics of aerosols in the urban region and their influence on human health. Climatic and Environmental Research, 4, 67-73(1999).

    [6] C L Ji, Z M Tao, S X Hu, et al. Cirrus measurement using three-wavelength lidar in Hefei. Acta Optica Sinica, 34, 0401001(2014).

    [7] T Li, F D Qi, G M Yue, et al. Raman lidar system for the measurements of water vapor mixing ratio in the atmoshere. Chinese Journal of Atmospheric Siences, 24, 843-854(2000).

    [8] Y Z Wang, Y L Han, D S Sun, et al. Multi-season observation and analysis of quasi-zero wind layer based on Doppler lidar in middle latitudes of China. Infrared and Laser Engineering, 49, 0305004(2020).

    [9] D Liu, Z M Tao, D C Wu, et al. Development of three-wavelength-Raman-polarization lidar system and case study. Acta Optica Sinica, 33, 0228001(2013).

    [10] W Y Lv, K E Yuan, X Wei, et al. A mobile lidar system for aerosol and water vapor detection in troposphere with mobile lidar. Infrared and Laser Engineering, 45, 0330001(2016).

    [11] R L Chi, D C Wu, B Liu, et al. Dual-wavelength Mie lidar for measuring the whole tropospheric aerosols. Journal of Atmospheric and Environmental Optics, 3, 179-186(2008).

    [12] A Ansmann, U Wandinger, M Riebesell, et al. Independent measurement of extinction and backscatter profiles in cirrus clouds by using a combined Raman elastic-backscatter lidar. Applied Optics, 31, 7113-7131(1992).

    [13] S S Yan, S X Hu, H L Hu, et al. A new derivation method for aerosol extinction coefficient detected by Raman lidar. Journal of Applied Optics, 29, 433-435(2008).

    [14] H Hersbach, B Bell, P Berrisford, et al. The ERA5 global reanalysis. Quarterly Journal of the Royal Meteorological Society, 146, 1999-2049(2020).

    [15] C Strube, P Preusse, M Ern, et al. Propagation paths and source distributions of resolved gravity waves in ECMWF-IFS analysis fields around the Southern Polar Night Jet. Atmospheric Chemistry and Physics, 21, 18641-18668(2021).

    [16] P Abreu, M Aglietta, M Ahlers, et al. Description of atmospheric conditions at the Pierre Auger Observatory using the Global Data Assimilation System (GDAS). Astroparticle Physics, 35, 591-607(2012).

    [17] M Teng, P Zhuang, Z Y Zhang, et al. New all-weather outdoor Raman-Mie scattering lidar system used in atmospheric aerosol pollution monitoring. Infrared and Laser Engineering, 48, 0706001(2019).

    [18] F G Fernald. Analysis of atmospheric lidar observations: Some comments. Applied Optics, 23, 652-653(1984).

    [19] Girolamo P Di, P F Ambrico, A Amodeo, et al. Aerosol observations by lidar in the nocturnal boundary layer. Applied Optics, 38, 4585-4595(1999).

    [20] Y Sasano, E V Browell, S Ismail. Error caused by using a constant extinction/backscattering ratio in the lidar solution. Applied Optics, 24, 3929-3932(1985).

    [21] R Shu, G H Huang, W Kong. Development and review of space-based laser altimetry technology. Infrared and Laser Engineering, 49, 20201047(2020).

    [22] H Yang, C Wang, Z B Sun, et al. High speed single-photon detector at 1550 nm wavelength. Infrared and Laser Engineering, 41, 325-329(2012).

    [23] B Y Liu, Q F Zhuang, S G Qin, et al. Aerosol classification method based on high spectral resolution lidar. Infrared and Laser Engineering, 46, 0411001(2017).

    [24] X C Wang, R Z Rao. Lidar ratios for atmospheric aerosol and cloud particles. Chinese Journal of Lasers, 32, 19-22(2005).

    [25] N Papagiannopoulos, L Mona, A Amodeo, et al. An automatic observation-based aerosol typing method for EARLINET. Atmospheric Chemistry and Physics, 18, 15879-15901(2018).

    [26] H G Di, X L Hou, H Zhao, et al. Detections and analyses of aerosol optical properties under different weather conditions using multi-wavelength Mie lidar. Acta Physica Sinica, 63, 244206(2014).

    [27] A Amodeo, J Bösenberg, A Ansmann, et al. EARLINET: The european aerosol lidar network. Optica Pura Y Aplicada, 39, 1-10(2006).

    [28] G D'Amico, A Amodeo, H Baars, et al. EARLINET Single Calculus Chain – overview on methodology and strategy. Atmospheric Measurement Techniques, 8, 4891-4916(2015).

    [29] M Sicard, G D'Amico, A Comerón, et al. EARLINET: Potential operationality of a research network. Atmospheric Measurement Techniques, 8, 4587-4613(2015).

    [30] G D'Amico, A Amodeo, I Mattis, et al. EARLINET Single Calculus Chain – technical – Part 1: Pre-processing of raw lidar data. Atmospheric Measurement Techniques, 9, 491-507(2016).

    [31] I Mattis, G D'Amico, H Baars, et al. EARLINET single calculus chain – technical – Part 2: Calculation of optical products. Atmospheric Measurement Techniques, 9, 3009-3029(2016).

    [32] A Ansmann, M Riebesell, C Weitkamp. Measurement of atmospheric aerosol extinction profiles with a Raman lidar. Optics Letters, 15, 746-748(1990).

    Tools

    Get Citation

    Copy Citation Text

    Yuanzu Wang, Dongsong Sun, Yuli Han, Jun Zheng, Yiming Zhao. Influence of atmospheric models on the aerosol optical parameters inversion and classification[J]. Infrared and Laser Engineering, 2023, 52(1): 20220262

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Atmospheric optics

    Received: Apr. 18, 2022

    Accepted: --

    Published Online: Feb. 9, 2023

    The Author Email:

    DOI:10.3788/IRLA20220262

    Topics