Effect of exhaust thermal parameters on optimal circuit layouts and optimal thermoelectric generator structure used in internal combustion engine
•Effect of circuit layout and exhaust parameters on power performance is performed.•Structure scales under different series circuit layouts are optimized and compared.•Optimal height and width scales are not effected by stage number of series current.•Multi-stage series current is strong recommended...
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Published in | Energy conversion and management. X Vol. 19; p. 100388 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
Published |
Elsevier Ltd
01.07.2023
Elsevier |
Subjects | |
Online Access | Get full text |
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Summary: | •Effect of circuit layout and exhaust parameters on power performance is performed.•Structure scales under different series circuit layouts are optimized and compared.•Optimal height and width scales are not effected by stage number of series current.•Multi-stage series current is strong recommended in large-scale TEG systems.
To improve the thermoelectric generator (TEG) power conversion efficiency when recovering automobile exhaust waste heat, it is important to design an optimal structure and circuit layouts on TEG responding to actual changed exhaust parameters. However, full-series-current thermoelectric models were commonly used without considering on other circuit layouts in previous studies. In order to explore the effect of circuit layout on thermoelectric generator’s performance, this research introduced two kinds of thermoelectric models with full series-current mode and multi-series current mode taken. By taking finite element analysis, it is mainly focused on revealing the TEG power output performance and the optimal structure scales under different circuit layouts. Besides, the effect of exhaust thermal parameters were considered in the optimization process. Finally, by comparing the effects of structure scales, circuit layout mode, exhaust temperature, and mass flow rate on the net power, the maximal power conversion was achievable which was helpful to complete a more comprehensively optimal design on thermoelectric generator. It is found that when the multi-series current stage increases from 2 to 5, the net power can obviously increase from 13% to 27% compared to a full-series current layout. As the number of stage increases, the power increase becomes less and less obvious. Whatever the exhaust parameters, the same optimal height scale and optimal width scale of the series current mode can be used in the multi-series current mode. The optimal length of a multi-stage should be designed according to exhaust parameters. It is strongly recommended to use multi-stage series current mode for its obvious improvement on power for large-scale TEG systems. |
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ISSN: | 2590-1745 2590-1745 |
DOI: | 10.1016/j.ecmx.2023.100388 |