Acta Optica Sinica, Volume. 43, Issue 18, 1899909(2023)

Lidar Observations of Boundary Layer Low-Level Jet and Its Effect on PM2.5

Yiyuan Fu1, Xiaoquan Song1,2、*, and Wenchao Lian1
Author Affiliations
  • 1College of Marine Technology, Faculty of Information Science and Engineering, Ocean University of China, Qingdao 266100, Shandong, China
  • 2Laboratory for Regional Oceanography and Numerical Modeling, Pilot National Laboratory for Marine Science and Technology (Qingdao), Qingdao 266237, Shandong, China
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    References(32)

    [1] Marke T, Crewell S, Schemann V et al. Long-term observations and high-resolution modeling of midlatitude nocturnal boundary layer processes connected to low-level jets[J]. Journal of Applied Meteorology and Climatology, 57, 1155-1170(2018).

    [2] Fu S M, Tang H, Li Y et al. On the relationship of a low-level jet and the formation of a heavy-rainfall-producing mesoscale vortex over the Yangtze River basin[J]. Atmosphere, 12, 156-170(2021).

    [3] Tian Y, Ye C Z, Yao R. Statistical analysis of the characteristics of warm-sector rainstorms in the southern part of the Yangtze River during the period of 2008—2018[J]. Transactions of Atmospheric Sciences, 45, 51-64(2022).

    [4] Li J, Li J R, Tian J. Study on the characteristics of low-level jet and its impact on flights at Zhengzhou Airport based on wind profiler radar data[J]. Journal of Tropical Meteorology, 35, 343-352(2019).

    [5] Zhu X W, Ma Z Q, Li Z M et al. Impacts of meteorological conditions on nocturnal surface ozone enhancement during the summertime in Beijing[J]. Atmospheric Environment, 225, 117368(2020).

    [6] Udina M, Soler M R, Olid M et al. Pollutant vertical mixing in the nocturnal boundary layer enhanced by density currents and low-level jets: two representative case studies[J]. Boundary-Layer Meteorology, 174, 203-230(2020).

    [7] Yang C X, Luo S, Li S T et al. Effects of different low-level jet structures on aerodynamic performance of horizontal axis wind turbine[J]. Acta Energiae Solaris Sinica, 41, 107-113(2020).

    [8] Farquharson J S. The diurnal variation of wind over tropical Africa[J]. Quarterly Journal of the Royal Meteorological Society, 65, 165-184(1939).

    [9] Blackadar A K. Boundary layer wind maxima and their significance for the growth of nocturnal inversions[J]. Bulletin of the American Meteorological Society, 38, 283-290(1957).

    [10] Holton J R. The diurnal boundary layer wind oscillation above sloping terrain[J]. Tellus, 19, 200-205(1967).

    [11] Bonner W D. Climatology of the low level jet[J]. Monthly Weather Review, 96, 833-850(1968).

    [12] Song J, Liao K, Coulter R L et al. Climatology of the low-level jet at the southern great Plains atmospheric boundary layer experiments site[J]. Journal of Applied Meteorology, 44, 1593-1606(2005).

    [13] Wu B G, Li Z F, Ju T T et al. Characteristics of Low-level jets during 2015-2016 and the effect on fog in Tianjin[J]. Atmospheric Research, 245, 105102(2020).

    [14] Song X Q, Long W R, Yun L et al. Analysis of accuracy and acquisition rate of Doppler lidar multi-beam wind measurement[J]. Acta Optica Sinica, 41, 1001001(2021).

    [15] Wang X Y, Wu S H, Liu X Y et al. Observation of aircraft wake vortex based on coherent Doppler lidar[J]. Acta Optica Sinica, 41, 0901001(2021).

    [16] Li Q, Zheng J F, Zhu K Y et al. Structural characteristics of low-level jet based on wind lidar[J]. Laser Technology, 44, 557-562(2020).

    [17] Ma Q J, Li Z N, Song X Q et al. Observational study of low-level jet based on Doppler wind lidar[J]. Journal of Marine Meteorology, 39, 61-67(2019).

    [18] Banta R M, Newsom R K, Lundquist J K et al. Nocturnal low-level jet characteristics over Kansas during cases-99[J]. Boundary-Layer Meteorology, 105, 221-252(2002).

    [19] Carroll B J, Demoz B B, Delgado R. An overview of low-level jet winds and corresponding mixed layer depths during PECAN[J]. Journal of Geophysical Research: Atmospheres, 124, 9141-9160(2019).

    [20] Wagner D, Steinfeld G, Witha B et al. Low level jets over the southern north sea[J]. Meteorologische Zeitschrift, 28, 389-415(2019).

    [21] Xiao Z S, Meng F, Xu J et al. Research advances in Low-Level Jets theory and their impact on air pollutant transmission[J]. Journal of Environmental Engineering Technology, 9, 111-118(2019).

    [22] Liao X N, Sun Z B, He N et al. A case study on the rapid cleaned away of PM2.5 pollution in Beijing related with BL jet and its mechanism[J]. Environmental Science, 37, 51-59(2016).

    [23] Liu J X, Yun L, Shao S Y et al. Observation of turbulence using Doppler wind lidar in Shenzhen[J]. Journal of Atmospheric and Environmental Optics, 16, 383-391(2021).

    [24] Jin X, Song X Q, Liu J X et al. Estimation of turbulence parameters in atmospheric boundary layer based on Doppler lidar[J]. Chinese Journal of Lasers, 48, 1110001(2021).

    [25] Liu H B, He M Y, Wang B et al. Advances in low-level jet research and future prospects[J]. Acta Meteorologica Sinica, 72, 191-206(2014).

    [28] Allen C J T, Washington R. The low-level jet dust emission mechanism in the central Sahara: observations from Bordj-Badji Mokhtar during the June 2011 Fennec Intensive Observation Period[J]. Journal of Geophysical Research: Atmospheres, 119, 2990-3015(2014).

    [29] Baas P, Bosveld F C, Klein Baltink H et al. A climatology of nocturnal low-level jets at cabauw[J]. Journal of Applied Meteorology and Climatology, 48, 1627-1642(2009).

    [30] Banta R, Mahrt L, Vickers D et al. The very stable boundary layer on nights with weak low-level jets[J]. Journal of the Atmospheric Sciences, 64, 3068-3090(2007).

    [31] Banta R M, Pichugina Y L, Newsom R K. Relationship between low-level jet properties and turbulence kinetic energy in the nocturnal stable boundary layer[J]. Journal of the Atmospheric Sciences, 60, 2549-2555(2003).

    [32] Tuononen M, O’Connor E J, Sinclair V A et al. Low-level jets over Utö, Finland, based on Doppler lidar observations[J]. Journal of Applied Meteorology and Climatology, 56, 2577-2594(2017).

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    Yiyuan Fu, Xiaoquan Song, Wenchao Lian. Lidar Observations of Boundary Layer Low-Level Jet and Its Effect on PM2.5[J]. Acta Optica Sinica, 2023, 43(18): 1899909

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    Paper Information

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    Received: Dec. 5, 2022

    Accepted: Feb. 24, 2023

    Published Online: Sep. 4, 2023

    The Author Email: Song Xiaoquan (songxq@ouc.edu.cn)

    DOI:10.3788/AOS222098

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