DocumentCode :
40693
Title :
Effects of Perforations on the Thermal and Fluid Dynamic Performance of a Heat Exchanger
Author :
Ismail, M.F.
Author_Institution :
Dept. of Mech. Eng., Bangladesh Univ. of Eng. & Technol., Dhaka, Bangladesh
Volume :
3
Issue :
7
fYear :
2013
fDate :
Jul-13
Firstpage :
1178
Lastpage :
1185
Abstract :
Efficient and optimized heat exchanger design is necessary because of the continuous increase of power consumption rate of electronic equipment and the simultaneous interest in reducing the mass and dimensions of the cooling equipment. This paper presents a numerical study of laminar forced convective heat transfer from an array of solid and different types of perforated fins attached to a rectangular-horizontal base plate. Fluid-flow and heat-transfer characteristics are presented for Reynolds numbers from 100 to 350 based on the fin thickness; Pr and tl number is taken as Pr = 0.71. Finite element approach with an unstructured nonuniform grid system is employed for solving the fluid-flow and heat-transfer equations. The predicted results obtained from the computational fluid dynamics simulations are verified by the previously published data, and the obtained results are in reasonable agreement. This numerical study determines the effects of various types of perforations on the pressure drop and heat-transfer performance of heat exchangers. For each type of perforation, fin effectiveness and performances are determined and compared with those of a solid fin. Results show that perforated fins have better thermal performance than solid fins.
Keywords :
computational fluid dynamics; cooling; finite element analysis; flow simulation; forced convection; heat exchangers; laminar flow; Reynolds numbers; computational fluid dynamic simulations; cooling equipment; electronic equipment; finite element approach; fluid-flow characteristics; fluid-flow equations; heat transfer characteristics; heat transfer equation; laminar forced convective heat transfer; optimized heat exchanger design; perforated fin thickness; power consumption rate; rectangular-horizontal base plate; solid fin; unstructured nonuniform grid system; Drag; Heat sinks; Heat transfer; Heating; Numerical models; Solids; Thermal resistance; Fin effectiveness; forced convection; laminar flow; perforated fins; pressure drag coefficient;
fLanguage :
English
Journal_Title :
Components, Packaging and Manufacturing Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
2156-3950
Type :
jour
DOI :
10.1109/TCPMT.2013.2240766
Filename :
6428630
Link To Document :
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