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Transient modeling and analysis of a stepped-configuration thermoelectric generator considering non-uniform temperature distribution

Author

Listed:
  • Zhu, Xingzhuang
  • Zuo, Zhengxing
  • Wang, Wei
  • Zhang, Min
  • Yin, Qian
  • Liu, Ruiheng
  • Jia, Boru

Abstract

Aiming at the low output power(P) and conversion efficiency(η) of a conventional thermoelectric generator(TEG), a stepped-configuration TEG integrating half-Heusler-based(HH) and bismuth-telluride-based(BT) thermoelectric modules(TEM) is proposed in this paper. A transient model considering the temperature drop along the gas flow direction is developed to predict the performance of the TEG and proved to be reliable. The effects of time, spatial location, input temperature(Ta,0) and flow rate(ṁa) on the thermoelectric performance of the stepped-configuration TEG are investigated. The results show that the stabilization time of the thermoelectric properties of the high-temperature TEG with HH is shorter than that of the low-temperature TEG with BT, and there is inertia in the transfer of key thermal properties. The thermoelectric properties of the TEM decrease gradually along the gas flow direction and the spatial variation is related to the ratio of the area of the high and low temperature TEG (RHL). P and η of the stepped-configuration TEG increase with RHL by 8.6% and 15.5%, respectively. P increases with Ta,0 and ṁa and η varies with Ta,0 and ṁa in relation to RHL. The maximum P and η of the stepped-configuration TEG are 276.6 W and 5.90%, respectively, and the corresponding Ta,0 and ṁa are 1573 K and 8 g/s, respectively, which are 32.3% higher than that of the conventional TEG. ṁa is a decisive factor affecting the distribution of energy flow in the stepped-configuration TEG, which is more important than Ta,0 and RHL. This scheme can effectively improve η of TEG and provide useful guidance for the study of TEG.

Suggested Citation

  • Zhu, Xingzhuang & Zuo, Zhengxing & Wang, Wei & Zhang, Min & Yin, Qian & Liu, Ruiheng & Jia, Boru, 2025. "Transient modeling and analysis of a stepped-configuration thermoelectric generator considering non-uniform temperature distribution," Applied Energy, Elsevier, vol. 383(C).
  • Handle: RePEc:eee:appene:v:383:y:2025:i:c:s030626192500090x
    DOI: 10.1016/j.apenergy.2025.125360
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    1. Wang, Yuchao & Dai, Chuanshan & Wang, Shixue, 2013. "Theoretical analysis of a thermoelectric generator using exhaust gas of vehicles as heat source," Applied Energy, Elsevier, vol. 112(C), pages 1171-1180.
    2. Tian, Hua & Sun, Xiuxiu & Jia, Qi & Liang, Xingyu & Shu, Gequn & Wang, Xu, 2015. "Comparison and parameter optimization of a segmented thermoelectric generator by using the high temperature exhaust of a diesel engine," Energy, Elsevier, vol. 84(C), pages 121-130.
    3. Zhu, Xingzhuang & Zuo, Zhengxing & Wang, Wei & Jia, Boru & Zhan, Tianzhuo, 2023. "Experimental research and optimization of a thermoelectric generator excited by pulsed combustion mode under limited heat dissipation for combined heat and power supply," Applied Energy, Elsevier, vol. 349(C).
    4. Xiao, Heng & Qiu, Kuanrong & Gou, Xiaolong & Ou, Qiang, 2013. "A flameless catalytic combustion-based thermoelectric generator for powering electronic instruments on gas pipelines," Applied Energy, Elsevier, vol. 112(C), pages 1161-1165.
    5. Hsu, Cheng-Ting & Huang, Gia-Yeh & Chu, Hsu-Shen & Yu, Ben & Yao, Da-Jeng, 2011. "An effective Seebeck coefficient obtained by experimental results of a thermoelectric generator module," Applied Energy, Elsevier, vol. 88(12), pages 5173-5179.
    6. Rodrigo, P.M. & Valera, A. & Fernández, E.F. & Almonacid, F.M., 2019. "Performance and economic limits of passively cooled hybrid thermoelectric generator-concentrator photovoltaic modules," Applied Energy, Elsevier, vol. 238(C), pages 1150-1162.
    7. Nyambuu, Unurjargal & Semmler, Willi, 2014. "Trends in the extraction of non-renewable resources: The case of fossil energy," Economic Modelling, Elsevier, vol. 37(C), pages 271-279.
    8. Montecucco, Andrea & Knox, Andrew R., 2014. "Accurate simulation of thermoelectric power generating systems," Applied Energy, Elsevier, vol. 118(C), pages 166-172.
    9. Zhang, T., 2016. "New thinking on modeling of thermoelectric devices," Applied Energy, Elsevier, vol. 168(C), pages 65-74.
    10. Suter, C. & Jovanovic, Z.R. & Steinfeld, A., 2012. "A 1kWe thermoelectric stack for geothermal power generation – Modeling and geometrical optimization," Applied Energy, Elsevier, vol. 99(C), pages 379-385.
    11. Luo, Ding & Yan, Yuying & Li, Ying & Wang, Ruochen & Cheng, Shan & Yang, Xuelin & Ji, Dongxu, 2023. "A hybrid transient CFD-thermoelectric numerical model for automobile thermoelectric generator systems," Applied Energy, Elsevier, vol. 332(C).
    12. Luo, Ding & Yang, Shuo & Yan, Yuying & Cao, Jin & Yang, Xuelin & Cao, Bingyang, 2024. "Performance improvement of the automotive thermoelectric generator system with a novel heat pipe configuration," Energy, Elsevier, vol. 306(C).
    13. Gou, Xiaolong & Yang, Suwen & Xiao, Heng & Ou, Qiang, 2013. "A dynamic model for thermoelectric generator applied in waste heat recovery," Energy, Elsevier, vol. 52(C), pages 201-209.
    14. Meng, Jing-Hui & Zhang, Xin-Xin & Wang, Xiao-Dong, 2014. "Multi-objective and multi-parameter optimization of a thermoelectric generator module," Energy, Elsevier, vol. 71(C), pages 367-376.
    15. Montecucco, Andrea & Siviter, Jonathan & Knox, Andrew R., 2015. "Constant heat characterisation and geometrical optimisation of thermoelectric generators," Applied Energy, Elsevier, vol. 149(C), pages 248-258.
    16. Guo, Qingran & Abbas, Shujaat & AbdulKareem, Hauwah K.K. & Shuaibu, Muhammad Shehu & Khudoykulov, Khurshid & Saha, Tanaya, 2023. "Devising strategies for sustainable development in sub-Saharan Africa: The roles of renewable, non-renewable energy, and natural resources," Energy, Elsevier, vol. 284(C).
    17. Zhao, Yulong & Zhang, Guoyin & Wen, Lei & Wang, Shixue & Wang, Yulin & Li, Yanzhe & Ge, Minghui, 2024. "Experimental study on thermoelectric characteristics of intermediate fluid thermoelectric generator," Applied Energy, Elsevier, vol. 365(C).
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