Title :
Steady-state thermal response using equivalent-circuit models from simulation data of a 2D thermal system with radiation
Author :
Karagol, Serap ; Bikdash, Marwan
Author_Institution :
Dept. of Electr. Eng., North Carolina A&T State Univ., Greensboro, NC, USA
Abstract :
In this paper, we develop a methodology to obtain medium-order electrical equivalent circuits (ECs) of the thermal behavior of 2D systems with radiation. The method combines several elements: (a) The use of detailed finite-element (FE) simulations of steady-state thermal behavior; (b) graph theoretic partitioning of FE meshes to decompose the geometry at intermediate levels of detail; and (c) physically-guided estimation of the parameters of the EC. We have also implemented a viewfactor based on radiative heat transfer model by including voltage-controlled current source in equivalent circuit. In order to have a non-zero view-factor, two surfaces must "see" each other directly. The equivalent circuit is updated to represent a radiation boundary condition as voltage (i.e. temperature) controlled current source (i.e. heat source) attached at the radiation surface under consideration. The example examined in this paper is a 2-D cavity.
Keywords :
equivalent circuits; heat transfer; mesh generation; parameter estimation; radiation; thermal management (packaging); 2D cavity; 2D thermal system; FE meshes; electrical equivalent circuit; equivalent-circuit model; finite-element simulation; graph theoretic partitioning; nonzero view-factor; parameter estimation; radiation boundary condition; radiative heat transfer model; steady-state thermal response; voltage-controlled current source; PSPICE; Radiation heat transfer; equivalent circuits; view factor;
Conference_Titel :
System Theory (SSST), 2011 IEEE 43rd Southeastern Symposium on
Conference_Location :
Auburn, AL
Print_ISBN :
978-1-4244-9594-8
DOI :
10.1109/SSST.2011.5753783