A long-lived supercell over mountainous terrain

被引:21
|
作者
Scheffknecht, Phillip [1 ]
Serafin, Stefano [2 ]
Grubisic, Vanda [3 ]
机构
[1] Zentralanstalt Meteorol & Geodynam, Vienna, Austria
[2] Univ Vienna, Dept Meteorol & Geophys, Vienna, Austria
[3] Natl Ctr Atmospher Res, Earth Observing Lab, POB 3000, Boulder, CO 80307 USA
关键词
supercell; Alps; numerical modelling; case-study; WRF; wind shear; MESOSCALE CONVECTIVE SYSTEMS; INGREDIENTS-BASED METHODOLOGY; SATELLITE INFRARED IMAGERY; VERTICAL WIND SHEAR; TORNADIC SUPERCELL; STORMS; THUNDERSTORM; CLIMATOLOGY; MOTION; ROTATION;
D O I
10.1002/qj.3127
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The life cycle of a convective storm forming over highly complex topography on the northern side of the Alps is studied. Moist convection began ahead of a cold front in the late morning of 2 August 2007 in eastern Switzerland. It developed into a supercell storm that moved along the Alpine main crest for more than 8 h, passed over several 2000 m high ridges and ultimately dissipated over eastern Austria. This study analyzes the impact of topography on the pre-storm environment and on the storm development using several simulations with the Weather Research and Forecasting (WRF) model at a minimum horizontal grid spacing of 833 m. A hindcast simulation of the event features a convective system evolving in good agreement with observations. Variations in the simulated storm intensity appear to be related to the topography below the storm. Two idealized simulations help understand how the Alpine topography affected storm initiation and development. North of the Alps, relatively strong shear between southwesterly synoptic flow aloft and thermally induced plain-to-mountain flow near the ground created favourable conditions for supercell development. Small-scale terrain features supported the upward transport of moisture via slope circulations, locally reducing CIN and increasing CAPE, and ultimately enhancing the storm longevity.
引用
收藏
页码:2973 / 2986
页数:14
相关论文
共 50 条
  • [41] Long-lived quantum coherence
    Eroshenko, Yu N.
    PHYSICS-USPEKHI, 2016, 59 (11) : 1161 - 1161
  • [42] Long-lived neutralino NLSPs
    Meade, Patrick
    Reece, Mattew
    Shih, David
    JOURNAL OF HIGH ENERGY PHYSICS, 2010, (10):
  • [43] More long-lived chemists
    Rayner-Canham, M.
    Rayner-Canham, G.
    CHEMISTRY WORLD, 2008, 5 (08): : 36 - 37
  • [44] Long-lived worms and aging
    Luo, Y
    REDOX REPORT, 2004, 9 (02) : 65 - 69
  • [45] LONG-LIVED CADMIUM ACTIVITIES
    CASSIDY, JM
    BELL, PR
    PHYSICAL REVIEW, 1950, 79 (02): : 418 - 418
  • [46] Long-lived superhydrophobic surfaces
    Xue, Chao-Hua
    Ma, Jian-Zhong
    JOURNAL OF MATERIALS CHEMISTRY A, 2013, 1 (13) : 4146 - 4161
  • [47] A STABLE AND LONG-LIVED GERMAIMINE
    GLIDEWELL, C
    LLOYD, D
    LUMBARD, KW
    MCKECHNIE, JS
    TETRAHEDRON LETTERS, 1987, 28 (03) : 343 - 344
  • [48] Amazing long-lived lifetime
    Weiwei Zhang
    Wei-Hong Zhu
    Green Energy & Environment, 2017, 2 (02) : 67 - 69
  • [49] Long-lived broadcast encryption
    Garay, JA
    Staddon, J
    Wool, A
    ADVANCES IN CRYPTOLOGY-CRYPTO 2000, PROCEEDINGS, 2000, 1880 : 333 - 352
  • [50] Long-lived quantum memory
    Zhao, R.
    Dudin, Y. O.
    Jenkins, S. D.
    Campbell, C. J.
    Matsukevich, D. N.
    Kennedy, T. A. B.
    Kuzmich, A.
    NATURE PHYSICS, 2009, 5 (02) : 100 - 104