Effect of the air cooled forced convection finned heat sinks on the TEG
net power: experimental and simulation results


G. Montserrat, I.R. Cózar, L. Montoro, A. Massaguer, E. Massaguer, M. Comamala and T. Pujol

2018/04/20

Abstract

Thermoelectric generators (TEG) modules are devices that generate electrical power when there exists a temperature difference at its surfaces. The efficiency of TEGs depend on the ability to extract heat of its cold side. Some applications rely on air cooled forced convection finned heat
sinks whose design parameters may greatly vary. Here we study the effects of the design parameters of finned heat sinks on the net output power. The net output power is equal to the power
generated by the TEG minus the power absorbed by the fan that supplies air into the forced convection system. The analysis is carried out by means of computational fluid dynamics (CFD)
simulations with the multi-physics commercial software ANSYS. The model has been validated with experimental data. Results show that, for a constant heat sink exchange area, a better performance is achieved with fin thicknesses greater than 1 mm.

Published in: Renewable Energy & Power Quality Journal (RE&PQJ, Nº. 16)
Pages: 613-616 Date of Publication: 2018/04/20
ISSN: 2172-038X Date of Current Version:2018/03/23
REF: 408-18 Issue Date: April 2018
DOI:10.24084/repqj16.408 Publisher: EA4EPQ

Authors and affiliations

G. Montserrat1, I.R. Cózar1, L. Montoro1, A. Massaguer1, E. Massaguer2, M. Comamala1 and T. Pujol1
1. Department of Mechanical Engineering and Industrial Construction, EPS, University of Giron. (Spain)
2. Nabla Thermoelectrics, Banyoles (Spain)

Key words

TEG, thermoelectric generator, forced convection, finned heat sink.

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