Simulated dynamics and thermodynamics processes leading to the rapid intensification of rare tropical cyclones over the North Indian Oceans
File(s)Munsi_et_al_JESS.pdf (7.96 MB)
Published version
Author(s)
Type
Journal Article
Abstract
The life cycle dynamics and intensification processes of three long-duration tropical cyclones (TCs), viz., Fani (2019), Luban (2018), and Ockhi (2017) formed over the North Indian Ocean (NIO) have been investigated by developing a high-resolution (6 km × 6 km) mesoscale analysis using WRF and En3DVAR data assimilation system. The release of CAPE in nearly saturated middle-level relative humidity caused intense diabatic heating, leading to an increase in low-level convergence triggering rapid intensification (RI). The strengthening of the relative vorticity tendency terms was due to vertical stretching (TC Fani) and middle tropospheric advection (TCs Luban and Ockhi). The increase or decrease in upper-tropospheric divergence led to RI through two different mechanisms. The increase in upper divergence strengthens the vortical convection (in TC Luban and Fani) by enhancing the moisture and heat transport, whereas its decrease caused a reduction in the upper-level ventilation flow at 200 hPa followed by moisture accumulation, enhanced diabatic heating, and strengthened the warm core (TC Ockhi). The RI caused the vortex of three cyclones to extend up to the upper troposphere. The well organised wind during RI led the unorganised, weak, discontinuous vertical vortex columns to become organised with intense vertical velocity throughout the column. Spatial distributions of Okubo–Wiess (OW) parameter showed TC core dominated by vorticity than strain, since deep depression (DD) stages.
Date Issued
2022-09-28
Date Acceptance
2022-04-24
Citation
Journal of Earth System Science, 2022, 131 (4), pp.1-26
ISSN
0253-4126
Publisher
Indian Academy of Sciences
Start Page
1
End Page
26
Journal / Book Title
Journal of Earth System Science
Volume
131
Issue
4
Copyright Statement
© Indian Academy of Sciences
Identifier
https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000861479100002&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Subjects
Science & Technology
Physical Sciences
Geosciences, Multidisciplinary
Multidisciplinary Sciences
Geology
Science & Technology - Other Topics
Mesoscale modelling
tropical cyclone
rapid intensification
vortical advection
vortex stretching
asymmetrisation
axisymmetrisation
INTENSITY CHANGES
ENVIRONMENTAL-CONTROL
PACIFIC
MODEL
CYCLOGENESIS
MECHANISM
EVOLUTION
GENESIS
FLOW
Publication Status
Published
Article Number
ARTN 211
Date Publish Online
2022-09-28