This paper presents a conservative finite volume scheme for computing conduction heat transfer in materials with anisotropic conductivity. Unstructured solution-adaptive meshes composed of arbitrary convex polyhedra are used. Discrete energy balances are written over these polyhedra. Temperature gradients required for the evaluation of secondary diffusion fluxes are found by linear reconstruction. A fully implicit scheme is used for unsteady problems. The resulting discrete equations are solved using an algebraic multigrid scheme. Schemes for hanging-node and conformal adaption are implemented. Computations are performed using a variety of triangular and quadrilateral meshes. The results are compared to published analytical and numerical solutions and are shown to be satisfactory.
Skip Nav Destination
Article navigation
Research Papers
Computation of Anisotropic Conduction Using Unstructured Meshes
J. Y. Murthy,
J. Y. Murthy
Fluent, Inc., Ten Cavendish Court, Lebanon, NH 03766
Search for other works by this author on:
S. R. Mathur
S. R. Mathur
Fluent, Inc., Ten Cavendish Court, Lebanon, NH 03766
Search for other works by this author on:
J. Y. Murthy
Fluent, Inc., Ten Cavendish Court, Lebanon, NH 03766
S. R. Mathur
Fluent, Inc., Ten Cavendish Court, Lebanon, NH 03766
J. Heat Transfer. Aug 1998, 120(3): 583-591 (9 pages)
Published Online: August 1, 1998
Article history
Received:
September 9, 1996
Revised:
March 30, 1998
Online:
December 5, 2007
Citation
Murthy, J. Y., and Mathur, S. R. (August 1, 1998). "Computation of Anisotropic Conduction Using Unstructured Meshes." ASME. J. Heat Transfer. August 1998; 120(3): 583–591. https://doi.org/10.1115/1.2824315
Download citation file:
Get Email Alerts
Cited By
Study on the Influence of Different Momentum Ratios on Cold and Hot Fluid Mixing and Thermal Stress in T-Tube
J. Heat Mass Transfer (July 2025)
A Proposed Universal Wall Function for Velocity and Temperature in Turbulent Near-Wall Flows of Low and High Prandtl Number Fluids
J. Heat Mass Transfer (July 2025)
Physics-Informed Proper Orthogonal Decomposition for Accurate and Superfast Prediction of Thermal Field
J. Heat Mass Transfer (July 2025)
Related Articles
Computation of Sub-Micron Thermal Transport Using an Unstructured Finite Volume Method
J. Heat Transfer (December,2002)
Direct Simulation of Phonon-Mediated Heat Transfer in a Debye Crystal
J. Heat Transfer (November,1994)
Anisotropic Heat Conduction Effects in Proton-Exchange Membrane Fuel Cells
J. Heat Transfer (September,2007)
Heat Transfer From an Isothermal Vertical Surface With Adjacent Heated Horizontal Louvers: Numerical Analysis
J. Heat Transfer (December,2002)
Related Proceedings Papers
Related Chapters
Conduction Heat Transfer in a Printed Circuit Board
Everyday Heat Transfer Problems: Sensitivities to Governing Variables
Radiation
Thermal Management of Microelectronic Equipment