On Oscillatory Instability of Convective Flows at Low Prandtl Number

Author:

Gelfgat A. Yu.1,Bar-Yoseph P. Z.1,Yarin A. L.1

Affiliation:

1. Computational Mechanics Laboratory, Technion-Israel Institute of Technology, Haifa 32000, Israel

Abstract

Numerical investigation of the oscillatory instability of convective flows in laterally heated rectangular cavities is presented. Cavities with no-slip isothermal vertical boundaries, no-slip adiabatic lower boundary, and stress-free adiabatic upper boundary are considered. Dependence of the critical Grashof number and the critical frequency of oscillations on the aspect ratio (A = length/height) of the cavity are investigated. The stability diagrams were obtained for the whole interval of the aspect ratio 1 ≤ A ≤ 10. The study was carried out for two values of the Prandtl number, Pr = 0 and 0.015. It was shown that the oscillatory instability sets in as a result of the Hopf bifurcation. It was found that at two different values of the Prandtl number considered the instability is caused by different infinitely small dominant perturbations, which means that the convective heat transfer strongly affects stability of the flow even for cases having small Prandtl number. No asymptotic behavior for large aspect ratios was found up to A = 10. Slightly supercritical oscillatory flows were approximated asymptotically by means of the weakly nonlinear analysis of the calculated bifurcation.

Publisher

ASME International

Subject

Mechanical Engineering

Reference18 articles.

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2. Ben Hadid H , and RouxB. 1989a. “Buoyancy and Thermocapillary-Driven Flows in a Shallow Cavity: Unsteady Flow Regimes,” Journal of Crystal Growth, Vol. 97, pp. 217–225.

3. Ben Hadid H, and Roux B. 1989b. “Buoyancy-Driven Oscillatory Flows in Shallow cavities Filled with Low-Prandtl Number Fluids,” Proc. GAMM Workshop on Numerical Solution of Oscillatory Convection in Low Prandtl Number Fluids (ed., B. Roux), Marseille, 1988, Notes on Numerical Fluid Mechanics, Vieweg Braunschweig, Vol. 27, pp. 25–33.

4. Gelfgat A. Yu. , and TanasawaI., 1994, “Numerical Analysis of Oscillatory Instability of Buoyancy Convection with the Galerkin Spectral Method,” Numerical Heat Transfer, Part A, Vol. 25, pp. 627–648.

5. Gelfgat A. Yu. , Bar-YosephP. Z., and SolanA., 1996a, “Stability of a Confined Swirling Flows with and without Vortex Breakdown.” Journal of Fluid Mechanics, Vol. 311, pp. 1–36.

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