Acta Optica Sinica, Volume. 42, Issue 6, 0601003(2022)
UAV-Based Characteristic Detection of Near-Surface Layer Aerosol over Da Qaidam Area
[1] Rao R Z[M]. Modern atmospheric optics, 94, 577-583.
[2] Liao K N[M]. An introduction to atmospheric radiation(2004).
[3] Gao M, Guttikunda S K, Carmichael G R et al. Health impacts and economic losses assessment of the 2013 severe haze event in Beijing area[J]. Science of the Total Environment, 511, 553-561(2015).
[4] Xue T, Liu J, Zhang Q et al. Rapid improvement of PM2.5 pollution and associated health benefits in China during 2013—2017[J]. Scientia Sinica (Terrae), 50, 441-452(2020).
[5] Rao R Z, Qiao Y L, Wei H L et al. Research and application on optical properties of atmosphere in typical regions of China[J]. Journal of Atmospheric and Environmental Optics, 2, 401-408(2007).
[6] Han Y, Wang T J, Rao R Z et al. Progress in the study of physic-optics characteristics of atmospheric aerosols[J]. Acta Physica Sinica, 57, 7396-7407(2008).
[7] Levoni C, Cervino M, Guzzi R et al. Atmospheric aerosol optical properties: a database of radiative characteristics for different components and classes[J]. Applied Optics, 36, 8031-8041(1997).
[8] Geng M, Li X B, Qin W B et al. Research on the characteristics of aerosol size distribution and complex refractive index in typical areas of China[J]. Infrared and Laser Engineering, 47, 0311001(2018).
[9] Li X B, Gao Y Q, Wei H L et al. Development of optical particle counter with double scattering angles[J]. Optics and Precision Engineering, 17, 1528-1534(2009).
[10] Wang F F, Li X B, Zheng X M et al. Effect of relative humidity and wind speed on marine atmospheric aerosol particle size distribution[J]. Infrared and Laser Engineering, 48, 83-88(2019).
[11] Chen Z Y, Zhang J S, Zhang T S et al. Haze observations by simultaneous lidar and WPS in Beijing before and during APEC, 2014[J]. Science China Chemistry, 58, 1385-1392(2015).
[12] Chen S S, Xu Q S, Xu C D et al. Calculation of whole atmospheric aerosol optical depth based on micro-pulse lidar[J]. Acta Optica Sinica, 37, 0701002(2017).
[13] Ma X M, Tao Z M, Shan H H et al. Statistical distribution of extinction coefficients of tropospheric aerosols detected by lidar[J]. Acta Optica Sinica, 40, 1101003(2020).
[14] Zhao Y R, Cao N W, Jia P C et al. Simultaneous observation of ozone and aerosol by ultraviolet multi-wavelength lidar[J]. Laser & Optoelectronics Progress, 59, 1601001(2021).
[15] Zhang Q, Zhao C S, Tie X X et al. Characterizations of aerosols over the Beijing region: a case study of aircraft measurements[J]. Atmospheric Environment, 40, 4513-4527(2006).
[16] Li J X, Yin Y, Li P R et al. Aircraft measurements of aerosol spetial distribution properties in Shanxi Province in summer[J]. China Environmental Science, 34, 1950-1959(2014).
[17] Mu J S, Zhu Y J, Shan Y et al. Aircraft measurements of summer atmospheric particle number concentration and size distribution in Northeast China[J]. Geochimica, 49, 324-333(2020).
[18] Mao Q J, Jin S S, Zhang H X. Research on aerosol optical properties of typical areas of the world based on CALIPSO satellite remote sensing data[J]. Laser & Optoelectronics Progress, 58, 2428002(2021).
[19] Witte B, Singler R, Bailey S. Development of an unmanned aerial vehicle for the measurement of turbulence in the atmospheric boundary layer[J]. Atmosphere, 8, 195(2017).
[20] Jacob J, Chilson P, Houston A et al. Considerations for atmospheric measurements with small unmanned aircraft systems[J]. Atmosphere, 9, 252(2018).
[21] Wang Y, Sun J, Liu Y et al. Application of multi-rotor unmanned aerial vehicle in meteorological service[J]. Meteorological, Hydrological and Marine Instruments, 35, 40-42(2018).
[22] Wang D S, Peng Z R, Li B et al. Vertical atmospheric structure observation technology based on multi-rotor unmanned aerial vehicle (UAV) platform[J]. Equipment Environmental Engineering, 16, 35-40(2019).
[23] Wu Y, Luo T, Zhang K et al. Applicability analysis of multi-rotor UAV to detect meteorological elements in the near-surface layer over the Tibetan Plateau[J]. Proceedings of SPIE, 11455, 114557C(2020).
[24] Liu B, Wu C, Ma N et al. Vertical profiling of fine particulate matter and black carbon by using unmanned aerial vehicle in Macao, China[J]. Science of the Total Environment, 709, 136109(2020).
[25] Shi S S, Zhu B, Lu W et al. Estimation of radiative forcing and heating rate based on vertical observation of black carbon in Nanjing, China[J]. Science of the Total Environment, 756, 144135(2021).
[26] Gao R S, Telg H. McLaughlin R J, et al. A light-weight, high-sensitivity particle spectrometer for PM2.5 aerosol measurements[J]. Aerosol Science and Technology, 50, 88-99(2016).
[27] Hansen J E, Travis L D. Light scattering in planetary atmospheres[J]. Space Science Reviews, 16, 527-610(1974).
[28] Campbell J R, Hlavka D L, Welton E J et al. Full-time, eye-safe cloud and aerosol lidar observation at atmospheric radiation measurement program sites: instruments and data processing[J]. Journal of Atmospheric and Oceanic Technology, 19, 431-442(2002).
[29] Sasano Y, Shimizu H, Takeuchi N et al. Geometrical form factor in the laser radar equation: an experimental determination[J]. Applied Optics, 18, 3908-3910(1979).
[30] Fernald F G. Analysis of atmospheric lidar observations: some comments[J]. Applied Optics, 23, 652-653(1984).
[31] Ackermann J. The extinction-to-backscatter ratio of tropospheric aerosol: a numerical study[J]. Journal of Atmospheric and Oceanic Technology, 15, 1043-1050(1998).
[32] Yang H, Liu W Q, Liu J G et al. Urban planetary boundary layer aerosol monitoring by lidar at Beijing[J]. Chinese Journal of Lasers, 33, 1255-1259(2006).
[33] Chen T, Zhao Y J, Liu D et al. Inversion of micro-pulse lidar signals with a new calibration method[J]. Chinese Journal of Lasers, 39, 0514001(2012).
[34] Xu C D, Ji Y F. Research and application of MPL-A1/T micro pulse lidar[J]. Journal of Atmospheric and Environmental Optics, 3, 337-343(2008).
[35] Chen J, Zhao C S, Ma N et al. A parameterization of low visibilities for hazy days in the North China Plain[J]. Atmospheric Chemistry and Physics, 12, 4935-4950(2012).
[36] Liu Z D, Wang H, Shen X Y et al. Multiple regression analysis of winter visibility, PM2.5 concentration and humidity in Beijing-Tianjin-Hebei and its surrounding regions[J]. Acta Meteorologica Sinica, 78, 679-690(2020).
[37] Long F X, Zhang Y L. Relationship between atmospheric visibility and particulate matter concentration and meteorological parameters in Guilin urban area[J]. Journal of Meteorology and Environment, 36, 21-27(2020).
[38] Wang J K, Zhang H D, Gui H L et al. Relationship between atmospheric visibility and PM2.5 concentrations and distributions[J]. Environmental Science, 40, 2985-2993(2019).
[39] Chen W N, Dong Z B, Yang Z T et al. Threshold velocities of sand-driving wind in the Taklimakan desert[J]. Acta Geographica Sinica, 50, 360-367(1995).
[40] Zhu H, Zhang H S. An estimation of the threshold friction velocities over the three different dust storm source areas in northwest China[J]. Acta Meteorologica Sinica, 68, 977-984(2010).
[41] Shen Y B, Shen Z B, Du M Y et al. Variational characteristics of some parameters and factors during dusty weather in spring of Dunhuang[J]. Plateau Meteorology, 22, 378-384(2003).
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Yang Wu, Tao Luo, Changyu Liu, Kun Zhang, Feifei Wang, Nana Liu, Xuebin Li, Ruizhong Rao. UAV-Based Characteristic Detection of Near-Surface Layer Aerosol over Da Qaidam Area[J]. Acta Optica Sinica, 2022, 42(6): 0601003
Category: Atmospheric Optics and Oceanic Optics
Received: Aug. 5, 2021
Accepted: Oct. 15, 2021
Published Online: Mar. 8, 2022
The Author Email: Luo Tao (luotao@aiofm.ac.cn)