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Optimal design of a heat exchanger for automotive thermoelectric generator systems applied to a passenger car

Luo, Ding; Wu, Zihao; Yan, Yuying; Ji, Dongxu; Cheng, Ziming; Wang, Ruochen; Li, Ying; Yang, Xuelin

Authors

Ding Luo

Zihao Wu

YUYING YAN YUYING.YAN@NOTTINGHAM.AC.UK
Professor of Thermofluids Engineering

Dongxu Ji

Ziming Cheng

Ruochen Wang

Profile Image

YING LI YING.LI1@NOTTINGHAM.AC.UK
Assistant Professor

Xuelin Yang



Abstract

The heat exchanger determines the overall performance of automotive thermoelectric generator (ATEG) systems. To obtain the accurate performance of the ATEG system under actual driving conditions, a fluid-thermal-electric multiphysics numerical model is established. Considering the backpressure loss, weight loss, and pumping power loss, a net power model of the ATEG system is established. The performance of the two heat exchangers with and without fins is investigated and compared. Through optimizations, the optimal parameters for the heat exchanger with fins are NW = 2 rows, H = 30 mm, and NL = 5 columns, and those of the heat exchanger without fins are NW = 2 rows, H = 10 mm, and NL = 4 columns. The output power, net power, conversion efficiency, and net efficiency of the optimal ATEG system with fins are 35.49 W, 22.93 W, 1.89%, and 1.22%, respectively, and those of the optimal ATEG system without fins are 16.49 W, 8.67 W, 1.51%, and 0.79%, respectively. Through the use of fins, the net power and net efficiency of the ATEG system can be increased by 164.48% and 54.43% respectively. The results are helpful to guide the optimization and design of ATEG systems.

Citation

Luo, D., Wu, Z., Yan, Y., Ji, D., Cheng, Z., Wang, R., …Yang, X. (2023). Optimal design of a heat exchanger for automotive thermoelectric generator systems applied to a passenger car. Applied Thermal Engineering, 227, Article 120360. https://doi.org/10.1016/j.applthermaleng.2023.120360

Journal Article Type Article
Acceptance Date Mar 6, 2023
Online Publication Date Mar 9, 2023
Publication Date Jun 5, 2023
Deposit Date Oct 9, 2023
Publicly Available Date Mar 10, 2024
Journal Applied Thermal Engineering
Print ISSN 1359-4311
Publisher Elsevier BV
Peer Reviewed Peer Reviewed
Volume 227
Article Number 120360
DOI https://doi.org/10.1016/j.applthermaleng.2023.120360
Public URL https://nottingham-repository.worktribe.com/output/25803616
Publisher URL https://www.sciencedirect.com/science/article/abs/pii/S1359431123003897

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