The Pretornadic Phase of the Goshen County, Wyoming, Supercell of 5 June 2009 Intercepted by VORTEX2. Part II: Intensification of Low-Level Rotation

Author:

Markowski Paul1,Richardson Yvette1,Marquis James1,Davies-Jones Robert2,Wurman Joshua3,Kosiba Karen3,Robinson Paul3,Rasmussen Erik4,Dowell David5

Affiliation:

1. Department of Meteorology, The Pennsylvania State University, University Park, Pennsylvania

2. NOAA/National Severe Storms Laboratory, Norman, Oklahoma

3. Center for Severe Weather Research, Boulder, Colorado

4. Rasmussen Systems, Mesa, Colorado

5. NOAA/Earth System Research Laboratory, Boulder, Colorado

Abstract

Abstract The dynamical processes responsible for the intensification of low-level rotation prior to tornadogenesis are investigated in the Goshen County, Wyoming, supercell of 5 June 2009 intercepted by the second Verification of the Origins of Rotation in Tornadoes Experiment (VORTEX2). The circulation of material circuits that converge upon the low-level mesocyclone is principally acquired along the southern periphery of the forward-flank precipitation region, which is a corridor characterized by a horizontal buoyancy gradient; thus, much of the circulation appears to have been baroclinically generated. The descending reflectivity core (DRC) documented in Part I of this paper has an important modulating influence on the circulation of the material circuits. A circuit that converges upon the low-level mesocyclone center prior to the DRC’s arrival at low levels (approximately the arrival of the 55-dBZ reflectivity isosurface in this case) loses some of its previously acquired circulation during the final few minutes of its approach. In contrast, a circuit that approaches the low-level mesocyclone center after the DRC arrives at low levels does not experience the same adversity. An analysis of the evolution of angular momentum within a circular control disk centered on the low-level mesocyclone reveals that the area-averaged angular momentum in the nearby surroundings of the low-level mesocyclone increases while the mesocyclone is occluding and warm-sector air is being displaced from the near surroundings. The occlusion process reduces the overall negative vertical flux of angular momentum into the control disk and enables the area-averaged angular momentum to continue increasing even though the positive radial influx of angular momentum is decreasing in time.

Publisher

American Meteorological Society

Subject

Atmospheric Science

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3. Baseline climatology of sounding derived parameters associated with deep, moist convection;Craven;Natl. Wea. Dig.,2004

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