DocumentCode :
2563528
Title :
A uniform flow effective diffusivity approach for conjugate forced convection from a discrete rectangular source on a thin conducting plate
Author :
Ramanathan, Shanlkar ; Ortega, Allfonso
Author_Institution :
Dept. of Aerosp. & Mech. Eng., Arizona Univ., Tucson, AZ, USA
fYear :
1996
fDate :
29 May-1 Jun 1996
Firstpage :
341
Lastpage :
351
Abstract :
A model for uniform parallel flow over the surface of a rectangular source of heat on a conducting plate is used to demonstrate the use of analytic Greens functions to formulate the conjugate problem. The Greens functions are solutions to the temperature field that arise from a point source of heat on the surface. They provide a relationship between the local heat flux and surface temperature on the plate, effectively serving the same role as the heat transfer coefficient. By coupling the pointwise Greens function to a finite element discretization of the thin plate, the surface temperature and convective heat flux distributions on the heat source and its substrate are found by a non-iterative procedure. A parametric study showed that at high Peclet numbers, the heat transfer from the source approached the behavior of an infinite 2D source of heat. The average Nusselt numbers for rectangular sources of different aspect ratios were found to be insensitive to source aspect ratio at high Peclet numbers. Board conduction reduced the average Nusselt numbers over the source when it was defined in terms of the freestream temperature. New correlations for the source Nusselt number as a function of flow Peclet number and board conductivity are presented
Keywords :
Green´s function methods; cooling; finite element analysis; forced convection; packaging; printed circuit layout; Nusselt numbers; Peclet numbers; analytic Greens functions; conjugate forced convection; convective heat flux; discrete rectangular source; effective diffusivity approach; finite element discretization; freestream temperature; local heat flux; point source; pointwise Greens function; source aspect ratio; surface temperature; temperature field; thin conducting plate; uniform flow; Aerospace electronics; Computational modeling; Conductivity; Electronic components; Electronics cooling; Green function; Heat transfer; Solids; Temperature dependence; Temperature distribution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Thermal Phenomena in Electronic Systems, 1996. I-THERM V., Inter-Society Conference on
Conference_Location :
Orlando, FL
Print_ISBN :
0-7803-3325-X
Type :
conf
DOI :
10.1109/ITHERM.1996.534582
Filename :
534582
Link To Document :
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