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April 3, 2026Journal of Engineering Thermophysics0 citations

Vortex Structure and Instability Characteristics of Dean–Taylor Flow through a Rotating Bent Square-Shaped Enclosure

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RMRabindra Nath MondalRBRakesh BhowmickSHSelim Hussen

Key Points

  • This research aims to analyze the vortex structure and instability aspects of Dean–Taylor flow within a rotating bent square enclosure.
  • Investigated Dean–Taylor flow across a range of Taylor numbers from 0 to 2000.
  • Applied a temperature difference on vertical walls and maintained room temperature on horizontal walls.
  • Employed a spectral-based numerical approach and arc-length path continuation technique for solution analysis.
  • Examined chaotic nature through transient solutions and time series analysis.
  • Identified asymmetric steady solutions with 2- to 4-vortex configurations.
  • Documented flow transitions through multi-periodic, chaotic, and steady-state behaviors as Taylor number increases.
  • Found that chaotic flow significantly enhances convective heat transfer, measured by Nusselt numbers.
  • Demonstrated good agreement between computational findings and experimental data.

Abstract

The present paper investigates solution structure, instability characteristics, and chaotic nature of the Dean–Taylor flow with energy distribution through a rotating bent square-shaped enclosure adopting a spectral-based numerical approach. The channel is rotated about the vertical axis in the positive direction for the Taylor number 0 Tr 2000. A temperature difference is applied across the vertical walls while a room temperature is maintained on the horizontal walls. Numerical calculations are carried out for the Dean number Dn = 1000 over a wide of curvature ranging from 0. 001 to 0. 5, and the combined effects of centrifugal, Coriolis, and buoyancy forces are examined. As a result, three branches of asymmetric steady solutions (SS), composed of 2- to 4-vortex solutions, are obtained by using arc-length path continuation technique. To understand the unsteady nature, the transient solution is then inspected by time series analysis, and flow transition is precisely identified by determining the phase trajectory of the temporal development and assessing the power spectrum density. The study shows that, as Tr increases, the flow progresses through various instabilities namely multi-periodic, chaotic, steady-state, periodic, and then chaotic-state again, demonstrating a transition that features asymmetric 2- to 8-vortex solutions. Nusselt numbers are calculated as a measure of convective heat transfer (HT) between the heating wall and the fluid, and it is discovered that chaotic flow (SF) considerably improves convective heat transfer (CHT). Finally, our computational findings are assessed against previously reported experimental data, and an adequate consistency is observed.

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Cite This Study

Mondal et al. (2025) studied this question.

synapsesocial.com/papers/69cf5e745a333a821460ccc2https://doi.org/10.1134/s1810232826700013
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