Forchheimer forced convection in a rectangular channel partially filled with aluminum foam
•Heat transfer is proportional to the PPI and the ReH, and is inversely proportional to k parameter.•k<1 should be preferred to enhance the fin effect of the aluminum foam.•The HTC provides relatively lower drop of pressure in low pore density and higher heat transfer.•Increasing of k power impro...
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Published in | Experimental thermal and fluid science Vol. 75; pp. 162 - 172 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Elsevier Inc
01.07.2016
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Subjects | |
Online Access | Get full text |
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Summary: | •Heat transfer is proportional to the PPI and the ReH, and is inversely proportional to k parameter.•k<1 should be preferred to enhance the fin effect of the aluminum foam.•The HTC provides relatively lower drop of pressure in low pore density and higher heat transfer.•Increasing of k power improves the thermal enhancement factor (TEF) through it reduce heat transfer.
In this paper, heat transfer and pressure drop were investigated by placing open-cell aluminum foam in different ratios according to the channel volume in a hydrodynamically fully developed rectangular channel. Aluminum foams were placed inside the channel in the thermally developing flow region in four different ways; filling the channel completely, convex, concave or triangular against the flow. Air was used as working fluid. The experiments were performed over a wide range of the Reynolds number (968<ReDh<29,624) based on the channel equivalent diameter. The aluminum foam was used in the experiments having two different pore densities (10 and 20 pores per inch, PPI). Empirical equations were derived from the results obtained from the experiments in both laminar and turbulent channel flow regimes. The experiments for heat transfer and pressure drop applications in the porous medium led to original and useful findings; namely, while obtaining the highest value of heat transfer in the channel fully filled with aluminum foam according to the Reynolds number and pore density, the pressure drop and also the pump power increased substantially. This was defined as the thermal enhancement factor (TEF). The value of TEF for 20PPI was greater than 10PPI for both laminar and turbulent flow at a fully filled state. In contrast, the value of the TEF and heat transfer capability (HTC) was always higher for 10PPI when the channel is partially filled with aluminum foam. |
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Bibliography: | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 23 |
ISSN: | 0894-1777 1879-2286 |
DOI: | 10.1016/j.expthermflusci.2016.02.003 |