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Novel Supercritical CO2 Power Cycles for Waste Heat Recovery

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Novel Supercritical CO2 Power Cycles for Waste Heat Recovery ( novel-supercritical-co2-power-cycles-waste-heat-recovery )

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Energies 2020, 13, 370 30 of 31 19. Held, T. Waste Heat Recovery with Supercritical CO2 Cycles–Challenges and Opportunities; Technical presentation GT2012-70262 in the panel session “Application of Supercritical CO2 Cycles to Power Production”; ASME Turbo Expo: Copenhagen, Denmark, 11−15 June 2012. 20. Walnum, H.T.; Nekså, P.; Nord, L.O.; Andresen, T. Modelling and simulation of CO2 (carbon dioxide) bottoming cycles for offshore oil and gas installations at design and off-design conditions. Energy 2013, 59, 513–520. [CrossRef] 21. Held, T.J.; Vermeersch, M.L.; Xie, T.; Miller, J.D. Heat Engines With Cascade Cycles. World Patent WO/2011/119650 A2, 29 September 2011. 22. Wright, S.A.; Davidson, C.S.; Scammell, W.O. Thermo-economic analysis of four sCO2 waste heat recovery power systems. In Proceedings of the 5th International Symposium on Supercritical CO2 Power Cycles, San Antonio, TX, USA, 29–31 March 2016. 23. Cho, S.K.; Kim, M.; Baik, S.; Ahn, Y.; Lee, J.I. Investigation of the bottoming cycle for high efficiency combined cycle gas turbine system with supercritical carbon dioxide power cycle. In Proceedings of the ASME Turbo Expo 2015: Turbine Tech. Conf. and Exposition, Article No. 43077, Montréal, QC, Canada, 15–19 June 2015. 24. Huck, P.; Freund, S.; Lehar, M.; Peter, M. Performance comparison of supercritical CO2 versus steam bottoming cycles for gas turbine combined cycle applications. In Proceedings of the 5th International Symposium on Supercritical CO2 Power Cycles, San Antonio, TX, USA, 29–31 March 2016. 25. Kim, M.S.; Ahn, Y.; Kim, B.; Lee, J.I. Study on the supercritical CO2 power cycles for landfill gas firing gas turbine bottoming cycle. Energy 2016, 111, 893–909. [CrossRef] 26. Kim, Y.M.; Sohn, J.L.; Yoon, E.S. Supercritical CO2 Rankine cycles for waste heat recovery from gas turbine. Energy 2017, 118, 893–905. [CrossRef] 27. Marchionni, M.; Bianchi, G.; Tassou, S.A. Techno-economic assessment of Joule-Brayton cycle architectures for heat to power conversion from high-grade heat sources using CO2 in the supercritical state. Energy 2018, 148, 1140–1152. [CrossRef] 28. Wu, C.; Yan, X.-J.; Wang, S.-S.; Bai, K.-L.; Di, J.; Cheng, S.-F.; Li, J. System optimisation and performance analysis of CO2 transcritical power cycle for waste heat recovery. Energy 2016, 100, 391–400. [CrossRef] 29. Wang, S.-S.; Wu, C.; Li, J. Exergoeconomic analysis and optimization of single-pressure single stage and multi-stage CO2 transcritical power cycles for engine waste heat recovery: A comparative study. Energy 2018, 142, 559–577. [CrossRef] 30. 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] 31. Lazzaretto, A.; Toffolo, A. A method to separate the problem of heat transfer interactions in the synthesis of thermal systems. Energy 2008, 33, 163–170. [CrossRef] 32. Lazzaretto, A.; Manente, G. Analysis of superimposed elementary thermodynamic cycles: From the Brayton-Joule to advanced mixed (auto-combined) cycles. Int. J. Thermodyn. 2009, 12, 123–130. 33. Morandin, M.; Toffolo, A.; Lazzaretto, A. Superimposition of elementary thermodynamic cycles and separation of the heat transfer section in energy systems analysis. J. Energy Resour. Technol. 2013, 135, 021602. [CrossRef] 34. Lazzaretto, A.; Manente, G.; Toffolo, A. SYNTHSEP: A general methodology for the synthesis of energy system configurations beyond superstructures. Energy 2018, 147, 924–949. [CrossRef] 35. Toffolo, A. A synthesis/design optimization algorithm for Rankine cycle based energy systems. Energy 2014, 66, 115–127. [CrossRef] 36. Manente, G.; Fortuna, F.M. Supercritical CO2 power cycles for waste heat recovery: A systematic comparison between traditional and novel layouts with dual expansion. Energy Convers. Manag. 2019, 197, 111777. [CrossRef] 37. Vivian, J.; Manente, G.; Lazzaretto, A. A general framework to select working fluid and configuration of ORCs for low-to-medium temperature heat sources. Appl. Energy 2015, 156, 727–746. [CrossRef] 38. Saravanamuttoo, H.I.H.; Rogers, G.F.C.; Cohen, H.; Straznicky, P.V.; Nix, A.C. Gas Turbine Theory, 7th ed.; Pearson Education Limited: Harlow, UK, 2017. 39. Heywood, J.B. Internal Combustion Engine Fundamentals, 2nd ed.; McGraw-Hill Education: New York, NY, USA, 2018.

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