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contributor authorAbdoli, Abas
contributor authorDulikravich, George S.
date accessioned2017-05-09T01:09:43Z
date available2017-05-09T01:09:43Z
date issued2014
identifier issn0022-1481
identifier otherht_136_10_101801.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/155386
description abstractHeat removal capacity, coolant pumping power requirement, and surface temperature nonuniformity are three major challenges facing singlephase flow microchannel compact heat exchangers. In this paper multiobjective optimization has been performed to increase heat removal capacity, and decrease pumping power and temperature nonuniformity in complex networks of microchannels. Threedimensional (3D) fourfloor configurations of counterflow branching networks of microchannels were optimized to increase heat removal capacity from surrounding silicon substrate (15 أ— 15 أ— 2 mm). Each floor has four different branching subnetworks with opposite flow direction with respect to the next one. Each branching subnetwork has four inlets and one outlet. Branching patterns of each of these subnetworks could be different from the others. Quasi3D conjugate heat transfer analysis has been performed by developing a software package which uses quasi1D thermofluid analysis and a 3D steady heat conduction analysis. These two solvers were coupled through their common boundaries representing surfaces of the cooling microchannels. Using quasi3D conjugate analysis was found to require one order of magnitude less computing time than a fully 3D conjugate heat transfer analysis while offering comparable accuracy for these types of application. The analysis package is capable of generating 3D branching networks with random topologies. Multiobjective optimization using modeFRONTIER software was performed using response surface approximation and genetic algorithm. Diameters and branching pattern of each subnetwork and coolant flow direction on each floor were design variables of multiobjective optimization. Maximizing heat removal capacity, while minimizing coolant pumping power requirement and temperature nonuniformity on the hot surface, were three simultaneous objectives of the optimization. Paretooptimal solutions demonstrate that thermal loads of up to 500 W/cm2 can be managed with fourfloor microchannel cooling networks. A fully 3D thermofluid analysis was performed for one of the optimal designs to confirm the accuracy of results obtained by the quasi3D simulation package used in this paper.
publisherThe American Society of Mechanical Engineers (ASME)
titleMulti objective Design Optimization of Branching, Multifloor, Counterflow Microheat Exchangers
typeJournal Paper
journal volume136
journal issue10
journal titleJournal of Heat Transfer
identifier doi10.1115/1.4027911
journal fristpage101801
journal lastpage101801
identifier eissn1528-8943
treeJournal of Heat Transfer:;2014:;volume( 136 ):;issue: 010
contenttypeFulltext


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