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Effective thermal conductance of thermoelectric
generator modules
I. Ruiz, M. Borrelli, T. Pujol, N. Luo, L.
Pacheco, A. Massaguer, L. Montoro
2017/04/25
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Abstract
Recent studies have analyzed the viability
of generating electricity by means of thermoelectric modules applied to
processes with large amounts of waste heat. The simulation of the performance
of large-scale designs of thermoelectric generators (TEGs), however, is
a very complex task since it involves a coupling between both electrical
and thermal phenomena. In addition, a single TEG module contains tenths
of small P-type and N-type semiconductor legs, which implies that the
simulation must take into account domains with characteristic lengths
that vary several orders of magnitude. Here, we propose a methodology
for determining the effective heat conductance of a
single TEG module that can be employed for simulating the entire element
without entry into the details of its inner composition. The effective
thermal conductance here proposed can be understood as the coefficient
that predicts, at different operating conditions, an upper bound of the
electrical power generated by the TEG module.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 15) |
| Pages: 545-550 |
Date of Publication: 2017/04/25 |
| ISSN: 2172-038X |
Date of Current Version: |
|
REF: 387-17
|
Issue Date: April 2017 |
| DOI:10.24084/repqj15.387 |
Publisher: EA4EPQ |
Authors and affiliations
I. Ruiz(1), M. Borrelli(2), T. Pujol(1), N. Luo(1),
L. Pacheco(1), A. Massaguer(1), L. Montoro(1)
1. Polytechnic School, University of Girona, Campus Montilivi, Girona
(Spain)
2. Università degli Studi del Sannio, Benevento (Italy)
Key word
Thermoelectric generator, TEG module, Waste heat recovery.
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