Atmospheric transport structures shaping the "Godzilla" dust plume

被引:0
|
作者
Jarvis, Albert [1 ]
Mardi, Ali Hossein [2 ]
Foroutan, Hosein [2 ]
Ross, Shane D. [3 ]
机构
[1] Virginia Tech, Dept Mech Engn, Blacksburg, VA 24061 USA
[2] Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA USA
[3] Virginia Tech, Dept Ocean & Aerosp Engn, Blacksburg, VA USA
关键词
African dust; Trans-Atlantic dust transport; Lagrangian coherent structures; Lyapunov exponents; Atmospheric transport; Dust intrusion; Dynamical systems; LAGRANGIAN COHERENT STRUCTURES; TIME LYAPUNOV EXPONENTS; AFRICAN DUST; EXTRATROPICAL CYCLONES; CIRCULATION; TRACKING; DEFINITION; DYNAMICS; RECORD; LIDAR;
D O I
10.1016/j.atmosenv.2024.120638
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Saharan dust events, having great ecological and environmental impacts, are the largest producers of the world's dust by far. Identifying the mechanisms by which the dust is transported across the Atlantic is crucial for obtaining a complete understanding of these important events. Of these events, the so-called "Godzilla"dust a" dust intrusion of June 2020 was the largest and most impactful in the last two decades and underwent a particularly interesting transport pattern. By uncovering dominant, organizing structures derived from the wind velocity fields, known as Lagrangian coherent structures, we demonstrate the ability to describe and qualitatively predict certain aspects related to the evolution of the dust plume as it traverses the atmosphere over the Atlantic. In addition, we identify regions of high hyperbolicity, leading to drastic changes in the shape of the plume and its eventual splitting. While these tools have been quite readily adopted by the oceanographic community, they have still yet to fully take hold in the atmospheric sciences and we aim to highlight some of the advantages over traditional atmospheric transport methods.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] COMPUTER-ANALYSIS OF ATMOSPHERIC PLUME STRUCTURES
    TRIPATHI, S
    DE, AK
    DAS, J
    INDIAN JOURNAL OF RADIO & SPACE PHYSICS, 1992, 21 (06): : 321 - 328
  • [2] Atmospheric effects of the gas–dust plume of the Chelyabinsk meteoroid of 2013
    L. F. Chernogor
    Izvestiya, Atmospheric and Oceanic Physics, 2017, 53 : 259 - 268
  • [3] MODEL FOR SUSPENSION AND ATMOSPHERIC TRANSPORT OF DUST
    MILLS, MT
    OLSON, JS
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1973, 54 (11): : 1097 - 1097
  • [4] Atmospheric effects of the gas-dust plume of the Chelyabinsk meteoroid of 2013
    Chernogor, L. F.
    IZVESTIYA ATMOSPHERIC AND OCEANIC PHYSICS, 2017, 53 (03) : 259 - 268
  • [5] Atmospheric transport of microplastics during a dust storm
    Abbasi, Sajjad
    Rezaei, Mahrooz
    Ahmadi, Farnaz
    Turner, Andrew
    CHEMOSPHERE, 2022, 292
  • [6] Global transport of thermophilic bacteria in atmospheric dust
    Perfumo, Amedea
    Marchant, Roger
    ENVIRONMENTAL MICROBIOLOGY REPORTS, 2010, 2 (02): : 333 - 339
  • [7] Laser ceilometer measurements of Australian dust storm highlight need for reassessment of atmospheric dust plume loads
    McGowan, Hamish A.
    Soderholm, Joshua
    GEOPHYSICAL RESEARCH LETTERS, 2012, 39
  • [8] Formation of plasma dust structures at atmospheric pressure
    A. V. Filippov
    V. N. Babichev
    N. A. Dyatko
    A. F. Pal’
    A. N. Starostin
    M. D. Taran
    V. E. Fortov
    Journal of Experimental and Theoretical Physics, 2006, 102 : 342 - 354
  • [9] Formation of plasma dust structures at atmospheric pressure
    Filippov, A. V.
    Babichev, V. N.
    Dyatko, N. A.
    Pal', A. F.
    Starostin, A. N.
    Taran, M. D.
    Fortov, V. E.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2006, 102 (02) : 342 - 354
  • [10] New Gaussian plume equation for the impacts of dust storms on radionuclide transport
    Al-Zghoul B.M.
    Abu-El-Sha’r W.Y.
    Aerosol and Air Quality Research, 2020, 20 (01): : 119 - 127