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  4. Thermal effects on the dynamics of vortex breakdown in spherical Couette flow
 
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Thermal effects on the dynamics of vortex breakdown in spherical Couette flow

Source
Physics of Fluids
Author(s)
J.P., Ananthu, J. P.
V., Narayanan, Vinod
DOI
10.1063/5.0250795
Volume
37
Issue
2
Abstract
This study investigates the effect of heating on the topology of vortex breakdown in spherical Couette flow under unstable thermal stratification. A three-dimensional spectral direct numerical solver is employed to solve the non-dimensionalised Navier-Stokes and energy equations. The inner sphere is rotated with constant angular velocity, while the outer sphere remains stationary. A constant temperature difference is maintained between the inner and outer spheres. The rotational effects are characterized by the Reynolds number (Re), while buoyancy-driven forces are quantified by the Rayleigh number (Ra). At low Ra, rotational forces dominate, resulting in steady, axisymmetric flow with well-defined vortex-detection bubbles and an equatorial jet. As Re increases, centrifugal instabilities lead to periodic oscillations and the formation of complex bubble structures. For higher Ra values, buoyancy-induced convection destabilizes the flow, transitioning it to nonaxisymmetric and chaotic states dominated by convective cells and large-scale circulation. The evolution of the vortex breakdown topology is characterized using streamlines and velocity magnitude distributions. Time series and their fast Fourier transform illustrate the transition from periodic oscillations to high-frequency complex unsteady flow. Dynamic mode decomposition analysis reveals the dominant spatiotemporal modes, providing insight into the interplay between rotational and buoyancy-driven instabilities. Thermal plumes, driven by buoyancy forces, enhance radial mixing and heat transfer, with their coherence and complexity increasing with Ra and Re. � 2025 Elsevier B.V., All rights reserved.
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Sherpa Url
https://v2.sherpa.ac.uk/id/publication/9872
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85217275954&doi=10.1063%2F5.0250795&partnerID=40&md5=1b03f6b0ccdf16cea06cd37e0c9da889
https://d8.irins.org/handle/IITG2025/29338
Keywords
Aerodynamics
Buoyancy
Fast Fourier transforms
Fourier series
Navier Stokes equations
Oscillating flow
Rayleigh number
Reynolds number
Thermal plumes
Thermal stratification
Constant angular velocity
Constant temperature differences
Energy equation
Inner spheres
Navier-Stokes equation
Numerical solvers
Periodic oscillation
Spherical Couette flow
Thermal
Vortex breakdown
Vortex flow
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