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Couette flow represents the flow of fluid between two parallel plates, with one plate fixed and the other moving with a constant velocity. This configuration allows for a simplified analysis using the Navier-Stokes equations, which govern fluid motion under conditions of viscosity and incompressibility. For Couette flow, the assumptions include a steady, laminar, incompressible flow with a zero-pressure gradient in the flow direction. This flow type is beneficial for understanding shear-driven...
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Hagen-Poiseuille flow describes a viscous fluid's steady, incompressible flow through a cylindrical tube with a constant radius R. This flow profile is often applied to understand fluid transport in narrow channels, such as capillaries. It serves as a foundational example of laminar flow. In this model, cylindrical coordinates (r,θ,z) are used to describe the radial (r), angular (θ), and axial (z) dimensions within the tube. For Hagen-Poiseuille flow, the velocity profile is...
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Thermoelectric instabilities in a circular Couette flow.

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  • 1Department of Aerodynamics and Fluid Mechanics, Brandenburg University of Technology Cottbus-Senftenberg, Siemens-Halske-Ring 15a, 03046 Cottbus, Germany.

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This study analyzes non-isothermal circular Couette flow stability under dielectrophoretic forces. Results reveal instability thresholds and mode characteristics for rotating inner cylinder flows with radial electric buoyancy.

Keywords:
energy analysislinear stability analysisthermoelectric instability

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Area of Science:

  • Fluid Dynamics
  • Non-isothermal flows
  • Dielectrophoresis

Background:

  • Circular Couette flow is fundamental in fluid dynamics.
  • Non-isothermal effects and external force fields significantly alter flow stability.
  • Dielectrophoretic forces offer a method to manipulate dielectric fluids.

Purpose of the Study:

  • To investigate the linear stability of non-isothermal circular Couette flow.
  • To analyze the impact of a dielectrophoretic force field on flow stability.
  • To determine the onset of instability and associated flow modes.

Main Methods:

  • Linear stability analysis was employed.
  • Consideration of outward and inward heating configurations.
  • Application of an alternating voltage to induce radial electric buoyancy.

Main Results:

  • The study identified the threshold for the first transition to instability.
  • Wavenumber and frequency of the unstable modes were determined.
  • The influence of dielectrophoretic forces on stability boundaries was quantified.

Conclusions:

  • Dielectrophoretic forces can significantly alter the stability of non-isothermal circular Couette flow.
  • The findings provide critical insights into electrohydrodynamics in confined geometries.
  • This research contributes to understanding complex fluid behavior under combined thermal and electric fields.