Numerical Simulation of Tornado-like Vortices Induced by Small-Scale Cyclostrophic Wind Perturbations

被引:0
作者
Liu, Yuhan [1 ]
Jiang, Yongqiang [1 ]
Chen, Chaohui [1 ]
Zhang, Yun [1 ]
He, Hongrang [2 ]
Chen, Xiong [1 ]
Zhong, Ruilin [1 ]
机构
[1] Natl Univ Def Technol, Coll Meteorol & Oceanog, Changsha 410073, Peoples R China
[2] Natl Univ Def Technol, Coll Adv Interdisciplinary Studies, Changsha 410073, Peoples R China
基金
中国国家自然科学基金;
关键词
tornado; numerical simulation; tornado-like low; small scale; SURFACE VERTICAL VORTICITY; DOPPLER RADAR OBSERVATIONS; ANTICYCLONIC TORNADOES; SUPERCELL; OKLAHOMA; WSR-88D;
D O I
10.3390/atmos16010108
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study introduces a tornado perturbation model utilizing the cyclostrophic wind model, implemented through a shallow-water equation framework. Four numerical experiments were conducted: a single cyclonic wind perturbation (EXP1), a single low-geopotential height perturbation (EXP2), a cyclonic wind perturbation with a 0 Coriolis parameter (EXP3), and a single anticyclonic wind perturbation (EXP4). The outputs showed that in a static atmosphere setting, a small-scale cyclonic wind perturbation generated a tornado-like pressure structure. The centrifugal force in the central area exceeded the pressure gradient force, causing air particles to flow outward, leading to a pressure drop and strong pressure gradient. The effect of the Coriolis force is negligible for meso-gamma-scale and smaller systems, while for meso-beta-scale and larger systems, it begins to have a significant impact. The results indicate that a robust cyclonic and an anticyclonic wind field can potentially generate a pair of cyclonic and anticyclonic tornadoes when the horizontal vortex tubes in an atmosphere with strong vertical wind shear tilt, forming a pair of positive and negative vorticities. These tornadoes are similar but have different rotation directions.
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页数:19
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共 52 条
  • [1] Doppler Radar Observations of Anticyclonic Tornadoes in Cyclonically Rotating, Right-Moving Supercells
    Bluestein, Howard B.
    French, Michael M.
    Snyder, Jeffrey C.
    Houser, Jana B.
    [J]. MONTHLY WEATHER REVIEW, 2016, 144 (04) : 1591 - 1616
  • [2] A Multiscale Overview of the El Reno, Oklahoma, Tornadic Supercell of 31 May 2013
    Bluestein, Howard B.
    Snyder, Jeffrey C.
    Houser, Jana B.
    [J]. WEATHER AND FORECASTING, 2015, 30 (03) : 525 - 552
  • [3] The Mechanisms Responsible for Large Near-Surface Vertical Vorticity within Simulated Supercells and Quasi-Linear Storms
    Boyer, Christian H.
    Dahl, Johannes M. L.
    [J]. MONTHLY WEATHER REVIEW, 2020, 148 (10) : 4281 - 4297
  • [4] BROWN JM, 1980, MON WEATHER REV, V108, P1626, DOI 10.1175/1520-0493(1980)108<1626:TICATP>2.0.CO
  • [5] 2
  • [6] Bunkers M.J., 2007, J. Sev. Storms Meteorol, V2, P1559, DOI [10.55599/ejssm.v2i2.7, DOI 10.55599/EJSSM.V2I2.7]
  • [7] Occurrence of Anticyclonic Tornadoes in a Topographically Complex Region of Mexico
    Carbajal, Noel
    Leon-Cruz, Jose F.
    Pineda-Martinez, Luis F.
    Tuxpan-Vargas, Jose
    Gavino-Rodriguez, Juan H.
    [J]. ADVANCES IN METEOROLOGY, 2019, 2019
  • [8] Tornadoes in Northern Eurasia: From the Middle Age to the Information Era
    Chernokulsky, Alexander
    Kurgansky, Michael
    Mokhov, Igor
    Shikhov, Andrei
    Azhigov, Igor
    Selezneva, Evgeniya
    Zakharchenko, Denis
    Antonescu, Bogdan
    Kuehne, Thilo
    [J]. MONTHLY WEATHER REVIEW, 2020, 148 (08) : 3081 - 3110
  • [9] Simulated Supercells in Nontornadic and Tornadic VORTEX2 Environments
    Coffer, Brice E.
    Parker, Matthew D.
    [J]. MONTHLY WEATHER REVIEW, 2017, 145 (01) : 149 - 180
  • [10] On the Origins of Vorticity in a Simulated Tornado-Like Vortex
    Dahl, Johannes M. L.
    Fischer, Jannick
    [J]. JOURNAL OF THE ATMOSPHERIC SCIENCES, 2023, 80 (05) : 1361 - 1380