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  On the dynamics of equatorial excited dipolar systems

Cao, Y., Kurganov, A., Liu, Y., Rostami, M., Zeitlin, V. (2025): On the dynamics of equatorial excited dipolar systems. - Physics of Fluids, 37, 5, 056618.
https://doi.org/10.1063/5.0270628

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 ???ViewItemFull_lblCreators???:
Cao, Y.1, ???ENUM_CREATORROLE_AUTHOR???
Kurganov, A.1, ???ENUM_CREATORROLE_AUTHOR???
Liu, Y.1, ???ENUM_CREATORROLE_AUTHOR???
Rostami, Masoud2, ???ENUM_CREATORROLE_AUTHOR???                 
Zeitlin, V.1, ???ENUM_CREATORROLE_AUTHOR???
???ViewItemFull_lblAffiliations???:
1External Organizations, ou_persistent22              
2Potsdam Institute for Climate Impact Research, ou_persistent13              

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???ViewItemFull_lblSubject???: Thermodynamic properties, Atmospheric thermodynamics, Atmospheric dynamics, Atmospheric structure, Atmospheric science, Oceanography, Oceans, Geophysical fluid dynamics, Navier Stokes equations, Vortex dynamics
 ???ViewItemFull_lblAbstract???: We consider the two-layer moist-convective thermal rotating shallow water equations and design a flux globalization-based, well-balanced, path-conservative central-upwind numerical scheme for the studied model. We use the developed scheme to conduct a series of numerical simulations and report the observation of eastward-propagating excited dipolar systems. These systems are characterized by one or more convectively coupled, poorly isolated dipolar fronts, primarily driven by the equatorial adjustment of large-scale localized positive buoyancy or potential temperature anomalies on the equatorial beta plane. A formation of these dynamic structures is triggered when disturbances exceed a critical threshold in a moist-convective environment. Notably, during the evolution of cyclones, secondary counter-rotating anticyclones develop in the lower layer, while oppositely signed structures emerge in the upper layer, highlighting the system's vertical coupling. A significant finding of our experiments is the identification of a time lag mechanism, observable even under weaker moist-convective conditions, between the initial state and the system reaching the excited threshold required for eastward propagation. This time lag underscores a critical build-up phase, during which the system accumulates the necessary energy and momentum to transition into a dynamically active state.

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???ViewItemFull_lblLanguages???: eng - English
 ???ViewItemFull_lblDates???: 2025-03-122025-04-172025-05-202025-05-20
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 ???ViewItemFull_lblIdentifiers???: ???ENUM_IDENTIFIERTYPE_PIKDOMAIN???: RD1 - Earth System Analysis
???ENUM_IDENTIFIERTYPE_WORKINGGROUP???: Past and Future Earth
???ENUM_IDENTIFIERTYPE_ORGANISATIONALK???: RD1 - Earth System Analysis
???ENUM_IDENTIFIERTYPE_RESEARCHTK???: Atmosphere
???ENUM_IDENTIFIERTYPE_RESEARCHTK???: Extremes
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???ENUM_IDENTIFIERTYPE_DOI???: 10.1063/5.0270628
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???ViewItemFull_lblSourceTitle???: Physics of Fluids
???ViewItemFull_lblSourceGenre???: ???ENUM_GENRE_JOURNAL???, SCI, Scopus, p3
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???ViewItemFull_lblPages???: ???lbl_noEntry??? ???ViewItemFull_lblSourceVolumeIssue???: 37 (5) ???ViewItemFull_lblSourceSequenceNo???: 056618 ???ViewItemFull_lblSourceStartEndPage???: ???lbl_noEntry??? ???ViewItemFull_lblSourceIdentifier???: ???ENUM_IDENTIFIERTYPE_CONE???: https://publications.pik-potsdam.de/cone/journals/resource/physics-of-fluids
???ENUM_IDENTIFIERTYPE_PUBLISHER???: American Institute of Physics (AIP)