Supercritical CO2 Cycle for ICE Waste Heat Recovery

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Supercritical CO2 Cycle for ICE Waste Heat Recovery ( supercritical-co2-cycle-ice-waste-heat-recovery )

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Processes 2020, 8, 216 23 of 23 11. Song, J.; Li, X.; Ren, X.; Gu, C. Performance analysis and parametric optimization of supercritical carbon dioxide (S-CO2) cycle with bottoming Organic Rankine Cycle (ORC). Energy 2018, 143, 406–416. [CrossRef] 12. Wu, C.; Wang, S.; Li, J. Parametric study on the effects of a recuperator on the design and off-design performances for a CO2 transcritical power cycle for low temperature geothermal plants. Appl. Therm. Eng. 2018, 137, 644–658. [CrossRef] 13. FAl-Sulaiman, A.; Atif, M. Performance comparison of different supercritical carbon dioxide Brayton cycles integrated with a solar power tower. Energy 2015, 82, 61–71. [CrossRef] 14. Padilla, R.V.; Too, Y.C.S.; Benito, R.; Stein, W. Exergetic analysis of supercritical CO2 Brayton cycles integrated with solar central receivers. Appl. Energy 2015, 148, 348–365. [CrossRef] 15. Mohagheghi, M.; Kapat, J. Thermodynamic optimization of recuperated S-CO2 Brayton cycles for waste heat recovery applications. In Proceedings of the 4th International Symposium-Supercritical CO2 Power Cycles, Pittsburgh, PA, USA, 9–10 September 2014. 16. Jiang, P.; Zhang, F.; Xu, R. Thermodynamic analysis of a solar–enhanced geothermal hybrid power plant using CO2 as working fluid. Appl. Therm. Eng. 2017, 116, 463–472. [CrossRef] 17. Lee, W.W.; Bae, S.J.; Jung, Y.H.; Yoon, H.J.; Jeong, Y.H.; Lee, J.I. Improving power and desalination capabilities of a large nuclear power plant with supercritical CO2 power technology. Desalination 2017, 409, 136–145. [CrossRef] 18. Hu, L.; Chen, D.; Huang, Y.; Li, L.; Cao, Y.; Yuan, D.; Wang, J.; Pan, L. Investigation on the performance of the supercritical Brayton cycle with CO2-based binary mixture as working fluid for an energy transportation system of a nuclear reactor. Energy 2015, 89, 874–886. [CrossRef] 19. Baronci, A.; Messina, G.; McPhail, S.J.; Moreno, A. Numerical investigation of a MCFC (Molten Carbonate Fuel Cell) system hybridized with a supercritical CO2 Brayton cycle and compared with a bottoming Organic Rankine Cycle. Energy 2015, 93, 1063–1073. [CrossRef] 20. Park, S.; Kim, J.; Yoon, M.; Rhim, D.; Yeom, C. Thermodynamic and economic investigation of coal-fired power plant combined with various supercritical CO2 Brayton power cycle. Appl. Therm. Eng. 2018, 130, 611–623. [CrossRef] 21. Zhou, J.; Zhang, C.; Su, S.; Wang, Y.; Hu, S.; Liu, L.; Ling, P.; Zhong, W.; Xiang, J. Exergy analysis of a 1000 MW single reheat supercritical CO2 Brayton cycle coal-fired power plant. Energy Convers. Manag. 2018, 173, 348–358. [CrossRef] 22. Reyes-Belmonte, M.A.; Sebastián, A.; Romero, M. Optimization of a recompression supercritical carbon dioxide cycle for an innovative central receiver solar power plant. Energy 2016, 112, 17–27. [CrossRef] 23. Neises, T.C. A Comparison of Supercritical Carbon Dioxide Power Cycle Configurations with an Emphasis on CSP Applications. Energy Procedia 2014, 49, 1187–1196. [CrossRef] © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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