Roberts, A. J. (2008) The inertial dynamics of thin film flow of non-Newtonian fluids. Physics Letters. Section A: General, Atomic and Solid State Physics, 372 (10). pp. 1607-1611. ISSN 0375-9601
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Official URL: http://www.elsevier.com/wps/find/journaldescription.cws_home/505705/description#description
Identification Number or DOI: 10.1016/j.physleta.2007.10.014
Abstract
Consider the flow of a thin layer of non-Newtonian fluid over a solid surface. I model the case where the viscosity depends nonlinearly on the shear-rate; power law fluids are an important example, but the analysis here is for general nonlinear dependence. The modelling allows for large changes in film thickness provided the changes occur over a relatively large enough lateral length scale. Modifying the surface boundary condition for tangential stress forms an accessible foundation for the analysis where flow with constant shear is a neutral critical mode, in addition to a mode representing conservation of fluid. Perturbatively removing the modification then constructs a model for the coupled dynamics of the fluid depth and the lateral momentum. For example, the results model the dynamics of gravity currents of non-Newtonian fluids when the flow is not creeping.
| Item Type: | Article (DEST Category C) |
|---|---|
| Additional Information: | Deposited in accordance with the copyright policy of the publisher. |
| Uncontrolled Keywords: | thin fluid flow; non-Newtonian fluid; inertia; power law rheology |
| Subjects: | 290000 Engineering and Technology > 291800 Interdisciplinary Engineering > 291801 Fluidization and Fluid Mechanics 230000 Mathematical Sciences > 230100 Mathematics > 230113 Dynamical Systems |
| ID Code: | 3862 |
| Deposited By: | Prof Tony Roberts |
| Deposited On: | 19 Feb 2008 13:19 |
| Last Modified: | 03 Mar 2008 09:33 |
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