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  4. Hurricane eyewall evolution in a forced shallow-water model
 
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Hurricane eyewall evolution in a forced shallow-water model

Journal
Journal of the Atmospheric Sciences
Journal Volume
71
Journal Issue
5
Pages
1623-1643
Date Issued
2014
Author(s)
Hendricks, E.A.
Schubert, W.H.
Chen, Y.-H.
HUNG-CHI KUO  
Peng, M.S.
DOI
10.1175/JAS-D-13-0303.1
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-84899744820&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/386225
Abstract
A forced shallow-water model is used to understand the role of diabatic and frictional effects in the generation, maintenance, and breakdown of the hurricane eyewall potential vorticity (PV) ring. Diabatic heating is parameterized as an annular mass sink of variable width and magnitude, and the nonlinear evolution of tropical storm-like vortices is examined under this forcing. Diabatic heating produces a strengthening and thinning PV ring in time due to the combined effects of the mass sink and radial PV advection by the induced divergent circulation. If the forcing makes the ring thin enough, then it can become dynamically unstable and break down into polygonal asymmetries or mesovortices. The onset of barotropic instability is marked by simultaneous drops in both the maximum instantaneous velocity and minimum pressure, consistent with unforced studies. However, in a sensitivity test where the heating is proportional to the relative vorticity, universal intensification occurs during barotropic instability, consistent with a recent observational study. Friction is shown to help stabilize the PV ring by reducing the eyewall PV and the unstable-mode barotropic growth rate. The radial location and structure of the heating is shown to be of critical importance for intensity variability. While it is well known that it is critical to heat in the inertially stable region inside the radius of maximum winds to spin up the hurricane vortex, these results demonstrate the additional importance of having the net heating as close as possible to the center of the storm, partially explaining why tropical cyclones with very small eyes can rapidly intensify to high peak intensities. © 2014 American Meteorological Society.
SDGs

[SDGs]SDG13

[SDGs]SDG14

Type
journal article

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