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Energies 2021, 14, 204 14 of 14 4. Birkholz, U.; Grob, E.; Stohrer, U.; Voss, K.; Gruden, D.; Wurster, W. Conversion of Waste Exhaust Heat in Automobile using FeSi2 Thermoelements. In Proceedings of the 7th International Conference on Thermoelectric Energy Conversion, Arlington, TX, USA, 16–18 March 1988; pp. 124–128. 5. Bass, J.C.; Elsner, N.B.; Leavitt, F.A. Performance of the 1 kW thermoelectric generator for diesel engines. AIP Conf. Proc. 1994, 316, 295–298. 6. Matsubara, K. Development of a high efficient thermoelectric stack for a waste exhaust heat recovery of vehicles. In Proceedings of the Twenty-First International Conference on Thermoelectrics, ICT ’02, Long Beach, CA USA, 25–29 August 2002; pp. 418–423. 7. Jänsch, D. Thermoelektrik Eine Chance für die Automobilindustrie; Expert verlag GmbH: Tübingen, Germay, 2009. 8. Yang, J. Engineering and Materials for Automotive Thermoelectric Applications. In Proceedings of the 2009 Thermoelectrics Applications Workshop, San Diego, CA, USA, 29 September–2 October 2009; Available online: https://www.energy.gov/sites/ prod/files/2014/03/f13/yang_0.pdf (accessed on 11 October 2020). 9. Salvador, J.R.; Cho, J.Y.; Ye, Z.; Moczygemba, J.E.; Thompson, A.J.; Sharp, J.W.; König, J.; Maloney, R.; Thompson, T.; Sakamoto, J.; et al. Thermal to Electrical Energy Conversion of Skutterudite-Based Thermoelectric Modules. J. Electron. Mater. 2013, 42, 1389–1399. [CrossRef] 10. Yu, C.; Chau, K. Thermoelectric automotive waste heat energy recovery using maximum power point tracking. Energy Convers. Manag. 2009, 50, 1506–1512. [CrossRef] 11. Liu, X.; Deng, Y.D.; Li, Z.; Su, C.Q. Performance analysis of a waste heat recovery thermoelectric generation system for automotive application. Energy Convers. Manag. 2015, 90, 121–127. [CrossRef] 12. Zhang, Y.; Cleary, M.; Wang, X.; Kempf, N.; Schoensee, L.; Yang, J.; Joshi, G.; Meda, L. High-temperature and high-power-density nanostructured thermoelectric generator for automotive waste heat recovery. Energy Convers. Manag. 2015, 105, 946–950. [CrossRef] 13. Kim, T.Y.; Negash, A.A.; Cho, G. Waste heat recovery of a diesel engine using a thermoelectric generator equipped with customized thermoelectric modules. Energy Convers. Manag. 2016, 124, 280–286. [CrossRef] 14. Li, X.; Xie, C.; Quan, S.; Shi, Y.; Tang, Z. Optimization of Thermoelectric Modules’ Number and Distribution Pattern in an Automotive Exhaust Thermoelectric Generator. IEEE Access 2019, 7, 72143–72157. [CrossRef] 15. Li, G.; Zhu, D.; Zheng, Y.; Guo, W. Mesoscale combustor-powered thermoelectric generator with enhanced heat collection. Energy Convers. Manag. 2020, 205, 112403. [CrossRef] 16. Sivaprahasam, D.; Harish, S.; Gopalan, R.; Sundararajan, G. Automotive Waste Heat Recovery by Thermoelectric Generator Technology. In Bringing Thermoelectricity into Reality; Aranguren, P., Ed.; IntechOpen: London, UK, 2018. 17. Lee, H.S. Thermoelectrics: Design and Materials; John Wiley & Sons: Chichester, UK, 2017. 18. Lee, H. Thermal Design Heat Sinks, Thermoelectrics, Heat Pipes, Compact heat Exchangers, and Solar Cells; John Wiley & Sons: Hoboken, NJ, USA, 2010. 19. Weera, S.; Lee, H.; Attar, A. Utilizing effective material properties to validate the performance of thermoelectric cooler and generator modules. Energy Convers. Manag. 2020, 205, 112427. [CrossRef] 20. Kumar, S.; Heister, S.D.; Xu, X.; Salvador, J.R.; Meisner, G.P. Thermoelectric Generators for Automotive Waste Heat Recovery Systems Part I: Numerical Modeling and Baseline Model Analysis. J. Electron. Mater. 2013, 42, 665–674. [CrossRef] 21. Attar, A.; Lee, H.; Snyder, G.J. Optimum load resistance for a thermoelectric generator system. Energy Convers. Manag. 2020, 226, 113490. [CrossRef]PDF Image | Thermoelectric Generator (TEG) System for Automotive Exhaust
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