Acta Optica Sinica, Volume. 41, Issue 19, 1901004(2021)
Influence of Typhoon Peripheral Circulation on Atmospheric Boundary Layer Structure in Coastal Areas
[1] Stull R B. Mean boundary layer characteristics[M]. Stull R B. An introduction to boundary layer meteorology, atmospheric sciences library, 13, 1-27(1988).
[2] Garratt J. Review: the atmospheric boundary layer[J]. Earth-Science Reviews, 37, 89-134(1994).
[3] Ferrare R, Clayton M, Turner D et al. Raman lidar retrievals of mixed-layer heights[C](2012).
[4] Zilitinkevich S S. The height of the atmospheric planetary boundary layer: state of the art and new development[M]. Fernando H J S, Klaić J Z, McCulley L. National security and human health implications of climate change. NATO science for peace and security series C: environmental security, 147-161(2012).
[5] Tombrou M, Bossioli E, Protonotariou A P et al. Coupling GEOS-CHEM with a regional air pollution model for Greece[J]. Atmospheric Environment, 43, 4793-4804(2009).
[6] Seidel D J, Ao C O, Li K. Estimating climatological planetary boundary layer heights from radiosonde observations: comparison of methods and uncertainty analysis[J]. Journal of Geophysical Research Atmospheres, 115, D16113(2010).
[7] Boers R, Eloranta E W, Coulter R L. Lidar observations of mixed layer dynamics: tests of parameterized entrainment models of mixed layer growth rate[J]. Journal of Climate and Applied Meteorology, 23, 247-266(1984).
[8] Melfi S H, Spinhirne J D, Chou S H et al. Lidar observations of vertically organized convection in the planetary boundary layer over the ocean[J]. Journal of Climate and Applied Meteorology, 24, 806-821(1985).
[9] Luo T, Yuan R, Wang Z. Lidar-based remote sensing of atmospheric boundary layer height over land and ocean[J]. Atmospheric Measurement Techniques, 7, 173-182(2014).
[10] Medeiros B, Hall A, Stevens B. What controls the mean depth of the PBL?[J]. Journal of Climate, 18, 3157-3172(2005).
[11] Martucci G, Matthey R, Mitev V et al. Comparison between backscatter lidar and radiosonde measurements of the diurnal and nocturnal stratification in the lower troposphere[J]. Journal of Atmospheric and Oceanic Technology, 24, 1231-1244(2007).
[12] Wu M, Fan S J, Wu D. The characteristics of atmospheric boundary layer during tropical cyclone process and its influence on air quality over Pearl River Delta region[J]. China Environmental Science, 33, 1569-1576(2013).
[13] Yu D J. Intuitionistic fuzzy theory based typhoon disaster evaluation in Zhejiang Province, China: a comparative perspective[J]. Natural Hazards, 75, 2559-2576(2015).
[14] Liao F, Deng H, Gao Z Q et al. The research on boundary layer evolution characteristics of typhoon Usagi based on observations by wind profilers[J]. Acta Oceanologica Sinica, 36, 39-44(2017).
[15] Fang G C, Lin S J, Chang S Y et al. Effect of typhoon on atmospheric particulates in autumn in central Taiwan[J]. Atmospheric Environment, 43, 6039-6048(2009).
[16] Qu Y, Chen B J, Ming J et al. Aerosol impacts on the structure, intensity, and precipitation of the landfalling typhoon Saomai (2006)[J]. Journal of Geophysical Research: Atmospheres, 122, 11825-11842(2017).
[17] Zhao Q, Yang S Z, Qiao Y L et al. Analysis of the optical characteristic of littoral aerosol influenced by typhoon[J]. Acta Optica Sinica, 28, 2046-2050(2008).
[18] Song L L, Mao H Q, Huang H H et al. Analysis on boundary layer turbulent features of landfalling typhoon[J]. Acta Meteorologica Sinica, 63, 915-921(2005).
[19] Fan S J, Wang A Y, Fan Q et al. Atmospheric boundary layer concept model of the Pearl River Delta and its application[J]. Journal of Tropical Meteorology, 21, 286-292(2005).
[20] Gassmann M I, Pérez C F, Gardiol J M. Sea-land breeze in a coastal city and its effect on pollen transport[J]. International Journal of Biometeorology, 46, 118-125(2002).
[21] Yu X L, Xie Q, Wang D X. Diurnal cycle of marine atmospheric boundary layer during the 1998 summer monsoon onset over South China Sea[J]. Journal of Tropical Oceanography, 28, 31-35(2009).
[22] Yang Y J, Yim S H L, Haywood J et al. Characteristics of heavy particulate matter pollution events over Hong Kong and their relationships with vertical wind profiles using high-time-resolution Doppler lidar measurements[J]. Journal of Geophysical Research: Atmospheres, 124, 9609-9623(2019).
[23] Yue H Y, Gu T F, Wang C L et al. Influence of typhoon Nida process on ozone concentration in Guangzhou[J]. Acta Scientiae Circumstantiae, 38, 4565-4572(2018).
[24] Deng T, Wang T J, Wang S Q et al. Impact of typhoon periphery on high ozone and high aerosol pollution in the Pearl River Delta region[J]. Science of the Total Environment, 668, 617-630(2019).
[25] Chow E C H, Li R C Y, Zhou W. Influence of tropical cyclones on Hong Kong air quality[J]. Advances in Atmospheric Sciences, 35, 1177-1188(2018).
[26] Pérez I A, García M Á, Sánchez M L et al. Key points in air pollution meteorology[J]. International Journal of Environmental Research and Public Health, 17, 8349(2020).
[27] Villagrán V, Montecinos A, Franco C et al. Environmental monitoring network along a mountain valley using embedded controllers[J]. Measurement, 106, 221-235(2017).
[28] Chu Y F, Liu D, Wu D C et al. Algorithm of retrieving boundary layer height based on Raman lidar water vapor data[J]. Chinese Journal of Lasers, 47, 1204009(2020).
[29] Sassen K. The polarization lidar technique for cloud research: a review and current assessment[J]. Bulletin of the American Meteorological Society, 72, 1848-1866(1991).
[30] Fernald F G. Analysis of atmospheric lidar observations: some comments[J]. Applied Optics, 23, 652-653(1984).
[31] Li H, Wang Z J, Wang H Y et al. Combined observation of aerosol vertical structure using micro-pulse lidar and compact optical backscatter aerosol detector[J]. Laser & Optoelectronics Progress, 56, 132801(2019).
[32] Qing C[D]. Forecast of the optical turbulence with a mesoscale atmospherical model(2017).
[33] Vogelezang D H P, Holtslag A A M. Evaluation and model impacts of alternative boundary-layer height formulations[J]. Boundary-Layer Meteorology, 81, 245-269(1996).
[34] Xiang Y, Zhang T S, Liu J G et al. Evaluation of boundary layer height simulated by WRF mode based on lidar[J]. Chinese Journal of Lasers, 46, 0110002(2019).
[35] Liu Y, Hu F, Wang S G et al. Preliminary study of the variety of stable atmospheric boundary layer in Lanzhou city zone[J]. Journal of the Graduate School of the Chinese Academy of Science, 20, 482-487(2003).
[36] Shi Y, Hu F, Xiao Z S et al. Comparison of four different types of planetary boundary layer heights during a haze episode in Beijing[J]. Science of the Total Environment, 711, 134928(2020).
[37] Liu J M, Huang H, Wang X Z. Characteristics and environment effects of land sea breeze along the Huludao Coast[J]. Meteorological and Environmental Sciences, 42, 79-85(2019).
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Nana Liu, Tao Luo, Yajuan Han, Kaixuan Yang, Yang Wu, Kun Zhang, Ningquan Weng, Xuebin Li. Influence of Typhoon Peripheral Circulation on Atmospheric Boundary Layer Structure in Coastal Areas[J]. Acta Optica Sinica, 2021, 41(19): 1901004
Category: Atmospheric Optics and Oceanic Optics
Received: Jan. 22, 2021
Accepted: Mar. 8, 2021
Published Online: Oct. 9, 2021
The Author Email: Luo Tao (luotao@aiofm.ac.cn), Weng Ningquan (wnq@aiofm.ac.cn)