Instabilities of dynamic thermocapillary liquid layers. Part 2. Surface-wave instabilities

Author:

Smith Marc K.,Davis Stephen H.

Abstract

A planar liquid layer is bounded below by a rigid plate and above by an interface with a passive gas. A steady shear flow is set up by imposing a temperature gradient along the layer and driving the motion by thermocapillarity. This dynamic state is susceptible to surface-wave instabilities that couple the interfacial deflection to the underlying shear flow. These instabilities are found to be directly related to the two-dimensional waves on an isothermal layer subject to wind shear as described by Miles and by Smith & Davis. Hence the surface-tension gradients are important only in that they drive the basic shear flow. The surface-wave stability characteristics for liquid layers with and without return-flow profiles are presented, and special attention is paid to long-wave instabilities. Comparisons are made with available experimental observations.

Publisher

Cambridge University Press (CUP)

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference9 articles.

1. Smith, M. K. & Davis, S. H. 1982 J. Fluid Mech. 121,187.

2. Smith, M. K. 1982 Ph.D. dissertation, Northwestern University.

3. Yih, C. S. 1963 Phys. Fluids 61,321.

4. Miles, J. W. 1960 J. Fluid Mech. 8,593.

5. Scott, M. R. & Watts, H. A. 1975 Sandia Labs. Rep., SAND75-0198,Albuquerque.

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