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s-CO2) Power Cycle for Waste Heat Recovery

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s-CO2) Power Cycle for Waste Heat Recovery ( s-co2-power-cycle-waste-heat-recovery )

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Processes 2020, 8, 1461 18 of 18 80. Tao, Z.; Zhao, Q.; Tang, H.; Wu, J. Thermodynamic and exergetic analysis of supercritical carbon dioxide brayton cycle system applied to industrial waste heat recovery. Proc. CSEE 2019, 39, 6944–6952. (In Chinese) 81. Wang, X.; Dai, Y. An exergoeconomic assessment of waste heat recovery from a Gas Turbine-Modular Helium Reactor using two transcritical CO2 cycles. Energy Convers. Manag. 2016, 126, 561–572. [CrossRef] 82. Astolfi, M.; Alfani, D.; Lasala, S.; Macchi, E. Comparison between ORC and CO2 power systems for the exploitation of low-medium temperature heat sources. Energy 2018, 161, 1250–1261. [CrossRef] 83. Olumayegun, O.; Wang, M. Dynamic modelling and control of supercritical CO2 power cycle using waste heat from industrial processes. Fuel 2019, 249, 89–102. [CrossRef] 84. Luo, J.; Morosuk, T.; Tsatsaronis, G. Exergoeconomic investigation of a multi-generation system with CO2 as the working fluid using waste heat. Energy Convers. Manag. 2019, 197, 111882. [CrossRef] 85. Zhou, A.; Lia, X.; Ren, X.; Song, J.; Gu, C. Thermodynamic and economic analysis of a supercritical carbon dioxide (S-CO2) recompression cycle with the radial-inflow turbine efficiency prediction. Energy 2020, 191, 116566. [CrossRef] 86. Du, Q.; Zhang, L.; Zhang, D.; Xie, Y. Numerical investigation on flow characteristics and aerodynamic performance of shroud seal in a supercritical CO2 axial-flow turbine. Appl. Therm. Eng. 2020, 169, 114960. [CrossRef] 87. Kwon, S.; Son, S.; Heo, J.; Lee, J. Compact heat exchangers for supercritical CO2 power cycle application. Energy Convers. Manag. 2020, 209, 112666. [CrossRef] 88. Chai, L.; Tassou, S. A review of printed circuit heat exchangers for helium and supercritical CO2 Brayton cycles. Therm. Sci. Eng. Prog. 2020, 18, 100543. [CrossRef] 89. Xu, J.; Liu, C.; Sun, E.; Xie, J.; Li, M.; Yang, Y.; Liu, J. Perspective of S-CO2 power cycles. Energy 2019, 186, 115831. [CrossRef] 90. Huang, X.; Lu, P.; Luo, X.; Chen, J.; Yang, Z.; Liang, Y.; Wang, C.; Chen, Y. Synthesis and simultaneous MINLP optimization of heat exchanger network, steam Rankine cycle, and organic Rankine cycle. Energy 2020, 195, 116922. [CrossRef] 91. Sun, X.; Liu, L.; Zhuang, Y.; Zhang, L.; Du, J. Heat Exchanger Network Synthesis Integrated with Compression-Absorption Cascade Refrigeration System. Processes 2020, 8, 210. [CrossRef] 92. Wang, X.; Tian, H.; Yan, F.; Feng, W.; Pan, J. Optimization of a distributed energy system with multiple waste heat sources and heat storage of different temperatures based on the energy quality. Appl. Therm. Eng. 2020, 181, 114960. [CrossRef] 93. Timothy, J. Initial test results of a megawatt-class supercritical CO22 heat engine. In Proceedings of the 4th International Symposium—Supercritical CO2 Power Cycles, Pittsburgh, PA, USA, 9–10 September 2014. 94. Available online: https://www.siemens-energy.com/global/en/news/magazine/2020/waste-heat-to-power- with-sco2-turbines.html (accessed on 22 April 2020). Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. © 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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