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Analysis of conjugated heat transfer in micro-heat exchangers via integral transforms and non-intrusive optical techniques

Diego C. Knupp (Dept. of Mechanical Engineering and Energy Patrícia O.Soares Laboratory of Experimentation and Numerical Simulation in Heat and Mass Transfer – LEMA Instituto Politécnico, Universidade do Estado do Rio de Janeiro, Nova Friburgo , Brazil)
Carolina Palma Naveira-Cotta (Laboratory of Nano- and Microfluidics and Microsystems, Mechanical Engineering Dept. POLI&COPPE, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil)
Adrian Renfer (Department of Mechanical and Process Engineering, Laboratory of Thermodynamics in Emerging Technologies - LTNT, ETH Zurich, Zurich, Switzerland)
Manish K. Tiwari (Dept. of Mechanical Engineering, University College London, London, UK)
Renato M Cotta (Laboratory of Nano- and Microfluidics and Microsystems, Laboratory of Transmission and Technology of Heat, Mechanical Engineering Dept. – POLI&COPPE, Universidade Federal do Rio de Janeiro, Rio de Janeiro, RJ, Brazil)
Dimos Poulikakos (Department of Mechanical and Process Engineering, Laboratory of Thermodynamics in Emerging Technologies – LTNT, ETH Zurich, Zurich, Switzerland)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 3 August 2015

388

Abstract

Purpose

The purpose of this paper is to employ the Generalized Integral Transform Technique in the analysis of conjugated heat transfer in micro-heat exchangers, by combining this hybrid numerical-analytical approach with a reformulation strategy into a single domain that envelopes all of the physical and geometric sub-regions in the original problem. The solution methodology advanced is carefully validated against experimental results from non-intrusive techniques, namely, infrared thermography measurements of the substrate external surface temperatures, and fluid temperature measurements obtained through micro Laser Induced Fluorescence.

Design/methodology/approach

The methodology is applied in the hybrid numerical-analytical treatment of a multi-stream micro-heat exchanger application, involving a three-dimensional configuration with triangular cross-section micro-channels. Space variable coefficients and source terms with abrupt transitions among the various sub-regions interfaces are then defined and incorporated into this single domain representation for the governing convection-diffusion equations. The application here considered for analysis is a multi-stream micro-heat exchanger designed for waste heat recovery and built on a PMMA substrate to allow for flow visualization.

Findings

The methodology here advanced is carefully validated against experimental results from non-intrusive techniques, namely, infrared thermography measurements of the substrate external surface temperatures and fluid temperature measurements obtained through Laser Induced Fluorescence. A very good agreement among the proposed hybrid methodology predictions, a finite elements solution from the COMSOL code, and the experimental findings has been achieved. The proposed methodology has been demonstrated to be quite flexible, robust, and accurate.

Originality/value

The hybrid nature of the approach, providing analytical expressions in all but one independent variable, and requiring numerical treatment at most in one single independent variable, makes it particularly well suited for computationally intensive tasks such as in optimization, inverse problem analysis, and simulation under uncertainty.

Keywords

Acknowledgements

The authors would like to acknowledge the financial support provided by the Brazilian sponsoring agencies CNPq and FAPERJ. Diego C. Knupp is deeply indebted to Jovo Vidic (ETH-Zürich) for all the support in assembling the µ-LIF experimental setup.

Citation

Knupp, D.C., Naveira-Cotta, C.P., Renfer, A., Tiwari, M.K., Cotta, R.M. and Poulikakos, D. (2015), "Analysis of conjugated heat transfer in micro-heat exchangers via integral transforms and non-intrusive optical techniques", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 25 No. 6, pp. 1444-1462. https://doi.org/10.1108/HFF-08-2014-0259

Publisher

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Emerald Group Publishing Limited

Copyright © 2015, Emerald Group Publishing Limited

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