Convective Heat Transfer in a High Aspect Ratio Minichannel Heated on One Side

Author:

Forrest Eric C.1,Hu Lin-Wen2,Buongiorno Jacopo3,McKrell Thomas J.4

Affiliation:

1. Primary Standards Laboratory, Sandia National Laboratories, Albuquerque, NM 87185 e-mail:

2. Mem. ASME Nuclear Reactor Laboratory, Massachusetts Institute of Technology, Cambridge, MA 02139 e-mail:

3. Mem. ASME Department of Nuclear Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139 e-mail:

4. Department of Nuclear Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139 e-mail:

Abstract

Experimental results are presented for single-phase heat transfer in a narrow rectangular minichannel heated on one side. The aspect ratio and gap thickness of the test channel were 29:1 and 1.96 mm, respectively. Friction pressure drop and Nusselt numbers are reported for the transition and fully turbulent flow regimes, with Prandtl numbers ranging from 2.2 to 5.4. Turbulent friction pressure drop for the high aspect ratio channel is well-correlated by the Blasius solution when a modified Reynolds number, based upon a laminar equivalent diameter, is utilized. The critical Reynolds number for the channel falls between 3500 and 4000, with Nusselt numbers in the transition regime being reasonably predicted by Gnielinski's correlation. The dependence of the heat transfer coefficient on the Prandtl number is larger than that predicted by circular tube correlations, and is likely a result of the asymmetric heating. The problem of asymmetric heating condition is approached theoretically using a boundary layer analysis with a two-region wall layer model, similar to that originally proposed by Prandtl. The analysis clarifies the influence of asymmetric heating on the Nusselt number and correctly predicts the experimentally observed trend with Prandtl number. A semi-analytic correlation is derived from the analysis that accounts for the effect of aspect ratio and asymmetric heating, and is shown to predict the experimental results of this study with a mean absolute error (MAE) of less than 5% for 4000 < Re < 70,000.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference30 articles.

1. Evolution of Microchannel Flow Passages—Thermohydraulic Performance and Fabrication Technology;Heat Transfer Eng.,2003

2. Turbulent and Transition Flow Convective Heat Transfer in Ducts,1987

3. An Improvement in the Calculation of Turbulent Friction in Rectangular Ducts;ASME J. Fluids Eng.,1976

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