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Experimental analysis of an automotive thermoelectric
generator under different engine operating regimes
A. Massaguer, E. Massaguer, M. Comamala,
A. Cabot, J. Ricart and A. Deltell
2017/04/25
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Abstract
Thermoelectric generators (TEGs) have become
a promising technology for vehicle exhaust heat recovery. In this paper,
a novel prototype with reduced thermal inertia, low size and capable to
withstand the exhaust highest temperatures has been proposed. A small-scale
prototype has been built and tested for further study. Results of experiment
show the reasonability for exhaust heat recovery. The prototype can generate
a maximum power output of about 111 W when operating at exhaust temperatures
of 700 ºC. The vehicle speed is a significant factor affecting the
TEG performance for waste heat recovery. It can be found that the higher
the vehicle speed is, the better the performance of the ATEG is. Also
the temperature of the cooling system strongly affects the ATEG performance.
Higher water cooling temperatures reduce temperature difference between
hot and cold side of TEGs and cause a reduction on ATEG efficiency.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 15) |
| Pages: 619-623 |
Date of Publication: 2017/04/25 |
| ISSN: 2172-038X |
Date of Current Version: |
|
REF: 410-17
|
Issue Date: April 2017 |
| DOI:10.24084/repqj15.410 |
Publisher: EA4EPQ |
Authors and affiliations
A. Massaguer1, E. Massaguer2, M. Comamala1, A. Cabot3,
J. Ricart1 and A. Deltell1
1. Department of Mechanical Engineering and Industrial Construction. Polytechnic
High School, University of Girona Girona (Spain)
2. NABLA Thermoelectrics S.L. Girona (Spain)
3. Institut de Recerca en Energia de Catalunya. Barcelona (Spain)
Key word
Automotive, Thermoelectric, Generator, Waste, Heat.
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