Article ID Journal Published Year Pages File Type
1554458 Superlattices and Microstructures 2011 19 Pages PDF
Abstract

This paper reports a numerical analysis of the performance of a counter-flow rectangular shaped microchannel heat exchanger (MCHE) using nanofluids as the working fluids. Finite volume method was used to solve the three-dimensional steady, laminar developing flow and conjugate heat transfer in aluminum MCHE. The nanofluids used were Ag, Al2O3, CuO, SiO2, and TiO2 and the performance was compared with water. The thermal, flow fields and performance of the MCHE were analyzed using different nanofluids, different Reynolds numbers and different nanoparticle concentrations. Temperature profile, heat transfer coefficient, pressure profile, and wall shear stress were obtained from the simulations and the performance was discussed in terms of heat transfer rate, pumping power, effectiveness, and performance index. Results indicated enhanced performance with the usage of nanofluids, and slight penalty in pressure drop. The increase in Reynolds number caused an increase in the heat transfer rate and a decrease in the overall bulk temperature of the cold fluid. The increase in nanoparticle concentration also yielded better performance at the expense of increased pressure drop.

► The performance of a counter-flow rectangular shaped microchannel heat exchanger (MCHE) using nanofluids was modeled. ► The 3D steady, laminar developing flow and conjugate heat transfer in aluminum MCHE using finite volume method was solved. ► The effects of nanofluid types, Re number and nanoparticle concentration on the thermal, and flow fields were examined. ► It is found that the MCHE performance is enhanced using nanofluids with slight penalty in pressure drop.

Related Topics
Physical Sciences and Engineering Materials Science Electronic, Optical and Magnetic Materials
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