Heat Transfer in Fully Developed, Laminar Flows of Dissipative Pseudoplastic and Dilatant Fluids in Circular Conduits

Author:

Capobianchi Massimo1,Cangelosi Richard2,McGah Patrick M.3

Affiliation:

1. Department of Mechanical Engineering, Gonzaga University, 502 E. Boone Ave., Spokane, WA 99258-0026

2. Department of Mathematics, Gonzaga University, 502 E. Boone Ave., Spokane, WA 99258-0026

3. School of Science, Technology, Engineering & Mathematics, University of Washington Bothell, 18115 Campus Way NE, Box 358538, Bothell, WA 98011-8246

Abstract

Abstract This paper reports the results of a numerical study that determined the Nusselt number for hydrodynamically and thermally fully developed, laminar, dissipative flows of pseudoplastic and dilatant fluids through circular conduits. Two boundary conditions were considered, constant heat flux and constant temperature. Constitutive equations were used that describe the entire flow curve, from the zero-shear rate through the infinite shear rate Newtonian regions, so that computed Nusselt numbers are valid for whatever shear rates may exist in the flow field. Nusselt numbers are reported as a function of a dimensionless shear rate parameter that establishes the region of the flow curve where the system is operating and are shown to be bound by the Newtonian and power law values. The conditions required for the system to perform at these asymptotic limits are quantified.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference14 articles.

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2. Solution to the Graetz-Brinkman Problem With the Laplace Transform Galerkin Method;Int. J. Heat Mass Transfer,2005

3. Heat Transfer in Fully Developed Laminar Flow of Power Law Fluids;ASME J. Heat Transfer.,2014

4. Fully Developed Laminar Forced Convection in Circular Ducts for Power-Law Fluids With Viscous Dissipation;Int. J. Heat Mass Transfer,1997

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