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contributor authorKuo, H-C.
contributor authorLin, L-Y.
contributor authorChang, C-P.
contributor authorWilliams, R. T.
date accessioned2017-06-09T16:51:47Z
date available2017-06-09T16:51:47Z
date copyright2004/11/01
date issued2004
identifier issn0022-4928
identifier otherams-75477.pdf
identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4217817
description abstractAn important issue in the formation of concentric eyewalls in a tropical cyclone is the development of a symmetric structure from asymmetric convection. It is proposed herein, with the aid of a nondivergent barotropic model, that concentric vorticity structures result from the interaction between a small and strong inner vortex (the tropical cyclone core) and neighboring weak vortices (the vorticity induced by the moist convection outside the central vortex of a tropical cyclone). The results highlight the pivotal role of the vorticity strength of the inner core vortex in maintaining itself, and in stretching, organizing, and stabilizing the outer vorticity field. Specifically, the core vortex induces a differential rotation across the large and weak vortex to strain out the latter into a vorticity band surrounding the former. The straining out of a large, weak vortex into a concentric vorticity band can also result in the contraction of the outer tangential wind maximum. The stability of the outer band is related to the Fj?rtoft sufficient condition for stability because the strong inner vortex can cause the wind at the inner edge to be stronger than the outer edge, which allows the vorticity band and therefore the concentric structure to be sustained. Moreover, the inner vortex must possess high vorticity not only to be maintained against any deformation field induced by the outer vortices but also to maintain a smaller enstrophy cascade and to resist the merger process into a monopole. The negative vorticity anomaly in the moat serves as a ?shield? or a barrier to the farther inward mixing the outer vorticity field. The binary vortex experiments described in this paper suggest that the formation of a concentric vorticity structure requires 1) a very strong core vortex with a vorticity at least 6 times stronger than the neighboring vortices, 2) a large neighboring vorticity area that is larger than the core vortex, and 3) a separation distance between the neighboring vorticity field and the core vortex that is within 3 to 4 times the core vortex radius.
publisherAmerican Meteorological Society
titleThe Formation of Concentric Vorticity Structures in Typhoons
typeJournal Paper
journal volume61
journal issue22
journal titleJournal of the Atmospheric Sciences
identifier doi10.1175/JAS3286.1
journal fristpage2722
journal lastpage2734
treeJournal of the Atmospheric Sciences:;2004:;Volume( 061 ):;issue: 022
contenttypeFulltext


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