Plate fin heat sink modelling and design considerations for thermoelectric
generators

 

I. T’Jollyn, T. Pujol, M. De Paepe, A. Massaguer, L. Montoro

 

2017/04/25

Abstract

This paper presents the developed model for the analysis of thermoelectric generators (TEG) with a plate fin heat sink with forced convection at the cold side. In the first part, an analytical model is created for a TEG with a constant temperature at the hot junction and a variable thermal resistance at the cold junction of the TEG. The influence of varying the thermal resistance and the electrical load on the power output and efficiency of the module is simulated. The results show that the
optimal electrical load is a function of the thermal resistance. Next the influence of several design parameters of the heat sink is analyzed. The generated power by the module and the required fan
power for the cooling is evaluated to achieve maximal net power output or net thermal efficiency. From these analyses several design guidelines are formulated. The net power output shows an
optimal value in function of the air flow rate. Furthermore, the influence of the limits of different manufacturing techniques of plate fin heat sinks on the performance of the TEG is simulated.
This shows that the theoretical optimal fin thickness and fin gap is not achievable for all industrial manufacturing techniques.

Published in: Renewable Energy & Power Quality Journal (RE&PQJ, Nº. 15)
Pages: 551-556 Date of Publication: 2017/04/25
ISSN: 2172-038X Date of Current Version:

REF: 388-17

Issue Date: April 2017
DOI:10.24084/repqj15.388 Publisher: EA4EPQ

Authors and affiliations

I. T’Jollyn(1), T. Pujol(2), M. De Paepe(1), A. Massaguer(2), L. Montoro(2)
1. Department of Flow, Heat and Combustion Mechanics. Ghent University - UGent (Belgium)
2. Department of Mechanical Engineering and Industrial Construction. University of Girona. (Spain)

Key word

Thermoelectric generator, plate fin heat sink, thermal modelling, heat sink design

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