A vorticity budget for theoretical and convectively-coupled equatorial Rossby waves: Dynamical propagation and growth mechanisms

Matthews, Adrian J. ORCID: https://orcid.org/0000-0003-0492-1168 (2024) A vorticity budget for theoretical and convectively-coupled equatorial Rossby waves: Dynamical propagation and growth mechanisms. Quarterly Journal of the Royal Meteorological Society. ISSN 0035-9009

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Abstract

Convectively coupled equatorial Rossby waves (CCERWs) are westward-propagating tropical weather systems, that can trigger extreme precipitation and flooding. Here, vorticity budgets are used to determine their dynamical mechanisms of propagation and growth. First, an analytical solution to the vorticity budget of theoretical dry $n=1$ equatorial Rossby waves is presented. Westward propagation arises entirely from the planetary vorticity advection ($-eta v$) term, where high magnitude planetary vorticity is advected equatorward from higher latitudes to the west of cyclonic perturbations in the Rossby wave structure. This is the classical Rossby wave propagation mechanism. There is one other non-zero term in the vorticity budget; the vortex stretching ($-fD$) term has a (weak) eastward propagation tendency, mainly due to the convergence in the meridional wind structure to the east of the cyclonic perturbations. This acts to slow the overall westward propagation down. Both these terms are in quadrature with the vorticity structure, and hence the theoretical waves are neutral. A vorticity budget of observed CCERWs is then presented, using reanalysis data. The primary westward propagation mechanism is still the planetary vorticity advection term. However, the convergence centres are now aligned with the cyclonic vorticity centres, rather than a quarter cycle to the east. Hence the vortex stretching ($-fD$) term is now in phase with the vorticity, leading to growth of the CCERWs. There is an even stronger growth contribution from the non-linear vortex stretching $-\zeta D$ term. Horizontal vorticity advection and sub grid scale processes both act to damp the CCERW. The total source term is one of westward propagation and growth. This diagnostic vorticity budget approach can be applied to inform the assessment of forecast skill and model development.

Item Type: Article
Additional Information: Data Availability Statement: All data used in this analysis are publicly available. The IMERG precipitation data were supplied by the National Aeronautics and Space Administration through their web site at gpm.nasa.gov. ERA-5 data were accessed from Copernicus at https://cds.climate.copernicus.eu (doi: 10.24381/cds/bd0915c6). The Python code used for the analysis is archived at https://github.com/adrianjmatthews/py36/. Funding Information: The research presented in this article was carried out on the High Performance Computing Cluster supported by the Research Computing Service at the University of East Anglia. I was partially supported by the Natural Environment Research Council through the TerraMaris project (grant NE/R016704/1). I thank the three anonymous reviewers, whose comments helped to improve the article.
Uncontrolled Keywords: convection,equatorial rossby wave,growth mechanism,propagation mechanism,vorticity budget,atmospheric science,3* ,/dk/atira/pure/subjectarea/asjc/1900/1902
Faculty \ School: Faculty of Science > School of Environmental Sciences
University of East Anglia Research Groups/Centres > Theme - ClimateUEA
UEA Research Groups: Faculty of Science > Research Groups > Numerical Simulation, Statistics & Data Science
Faculty of Science > Research Groups > Fluids & Structures
Faculty of Science > Research Groups > Centre for Ocean and Atmospheric Sciences
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Depositing User: LivePure Connector
Date Deposited: 29 Nov 2024 01:53
Last Modified: 07 Jan 2025 02:17
URI: https://ueaeprints.uea.ac.uk/id/eprint/97830
DOI: 10.1002/qj.4917

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