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Thermoelectrohydrodynamic convection in a finite cylindrical annulus under microgravity

  • Changwoo Kang*
  • , Innocent Mutabazi
  • , Harunori N. Yoshikawa
  • *Corresponding author for this work
  • Normandie Université
  • Université Côte d'Azur
  • Doshisha University

Research output: Contribution to journalJournal articlepeer-review

Abstract

Numerical simulations of thermoelectrohydrodynamic convection in a dielectric liquid inside a finite-length cylindrical annulus with a fixed temperature difference have been performed with increasing high-frequency electric tension under microgravity conditions. The electric field, coupled with the permittivity gradient, generates a dielectrophoretic buoyancy force whose non-conservative part can induce thermoelectric convection in the liquid. The liquid remains in a conductive state below a critical value of the applied electric voltage. At a critical value, a supercritical bifurcation occurs from the conductive state to a convective state made of stationary helicoidal vortices. A further increase of electric voltage leads to oscillatory helicoidal vortices and then to wavy patterns before spoke patterns dominate the convective flow. The dielectrophoretic force is shown to enhance the heat transfer from the hot to cold walls due to induced convective flows. Particularly, these results demonstrate that the dielectrophoretic buoyancy force holds promise to replace the gravitational force to induce efficient heat transfer in microgravity conditions, and they contribute to a better fundamental understanding of heat transfer in microgravity.

Original languageEnglish
Article numberA7
JournalJournal of Fluid Mechanics
Volume991
DOIs
StatePublished - 2024.08.20

Keywords

  • convection
  • electrohydrodynamics
  • transition to turbulence

Quacquarelli Symonds(QS) Subject Topics

  • Engineering - Mechanical
  • Materials Science
  • Mathematics
  • Physics & Astronomy

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