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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 16 of 18 43. Baronci, A.; Messina, G.; McPhail, S.; 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] 44. Ahmadi, M.; Mohammadi, A.; Pourfayaz, F.; Mehrpooya, M.; Bidi, M.; Valero, A. Thermodynamic analysis and optimization of a waste heat recovery system for proton exchange membrane fuel cell using transcritical carbon dioxide cycle and cold energy of liquefied natural gas. J. Nat. Gas Sci. Eng. 2016, 34, 428–438. [CrossRef] 45. Mahmoudi, S.; Ghavimi, A. Thermoeconomic analysis and multi objective optimization of a molten carbonate fuel cell–Supercritical carbon dioxide-Organic Rankin cycle integrated power system using liquefied natural gas as heat sink. Appl. Therm. Eng. 2016, 107, 1219–1232. [CrossRef] 46. Ryu, J.; Ko, A.; Park, S. Thermo-economic assessment of molten carbonate fuel cell hybrid system combined between individual sCO2 power cycle and district heating. Appl. Therm. Eng. 2020, 169, 114911. [CrossRef] 47. Shu, G.; Shi, L.; Tian, H.; Li, X.; Huang, G.; Chang, L. An improved CO2-based transcritical Rankine cycle (CTRC) used for engine waste heat recovery. Appl. Energy 2016, 176, 171–182. [CrossRef] 48. Shu, G.; Shi, L.; Tian, H.; Deng, S.; Li, X.; Chang, L. Configurations selection maps of CO2-based transcritical Rankine cycle (CTRC) for thermal energy management of engine waste heat. Appl. Energy 2017, 186, 423–435. [CrossRef] 49. Shu, G.; Li, X.; Tian, H.; Shi, L.; Wang, X.; Yu, G. Design condition and operating strategy analysis of CO2 transcritical waste heat recovery system for engine with variable operating conditions. Energy Convers. Manag. 2017, 142, 188–199. [CrossRef] 50. Shi, L.; Shu, G.; Tian, H.; Chang, L.; Huang, G.; Chen, T. Experimental investigations on a CO2-based Transcritical Power Cycle (CTPC) for waste heat recovery of diesel engine. Energy Procedia 2017, 129, 955–962. [CrossRef] 51. Li, X.; Shu, G.; Tian, H.; Shi, L.; Huang, G.; Chen, T.; Liu, P. Preliminary tests on dynamic characteristics of a CO2 transcritical power cycle using an expansion valve in engine waste heat recovery. Energy 2017, 140, 696–707. [CrossRef] 52. Li, X.; Shu, G.; Tian, H.; Huang, G.; Liu, P.; Wang, X.; Shi, L. Experimental comparison of dynamic responses of CO2 transcritical power cycle systems used for engine waste heat recovery. Energy Convers. Manag. 2018, 161, 254–265. [CrossRef] 53. Shi, L.; Shu, G.; Tian, H.; Chen, T.; Liu, P.; Li, L. Dynamic tests of CO2-Based waste heat recovery system with preheating process. Energy 2019, 171, 270–283. [CrossRef] 54. Shi, L.; Tian, H.; Shu, G. Multi-mode analysis of a CO2-based combined refrigeration and power cycle for engine waste heat recovery. Appl. Energy 2020, 264, 114670. [CrossRef] 55. Shu, G.; Wang, R.; Tian, H.; Wang, X.; Li, X.; Cai, J.; Xu, Z. Dynamic performance of the transcritical power cycle using CO2-based binary zeotropic mixtures for truck engine waste heat recovery. Energy 2020, 194, 116825. [CrossRef] 56. Liu, P.; Shu, G.; Tian, H.; Feng, W.; Shi, L.; Wang, X. Experimental study on transcritical Rankine cycle (TRC) using CO2/R134a mixtures with various composition ratios for waste heat recovery from diesel engines. Energy Convers. Manag. 2020, 208, 112574. [CrossRef] 57. Choi, B. Thermodynamic analysis of a transcritical CO2 heat recovery system with 2-stage reheat applied to cooling water of internal combustion engine for propulsion of the 6800 TEU container ship. Energy 2016, 107, 532–541. [CrossRef] 58. Sharma, O.; Kaushik, S.; Manjunatti, K. Thermodynamic analysis and optimization of a supercritical CO2 regenerative recompression Brayton cycle coupled with a marine gas turbine for shipboard waste heat recovery. Therm. Sci. Eng. Prog. 2017, 3, 62–74. [CrossRef] 59. Hou, S.; Zhang, F.; Yu, L. Optimization of a combined cooling, heating and power system using CO2 as main working fluid driven by gas turbine waste heat. Energy Convers. Manag. 2018, 178, 235–249. [CrossRef] 60. Manjunath, K.; Sharma, O.; Tyagi, S.; Kaushik, S. Thermodynamic analysis of a supercritical/transcritical CO2 based waste heat recovery cycle for shipboard power and cooling applications. Energy Convers. Manag. 2018, 155, 262–275. [CrossRef] 61. Liang, Y.; Bian, X.; Qian, W.; Pan, M.; Ban, Z.; Yu, Z. Theoretical analysis of a regenerative supercritical carbon dioxide Brayton cycle/organic Rankine cycle dual loop for waste heat recovery of a diesel/natural gas dual-fuel engine. Energy Convers. Manag. 2019, 197, 111845. [CrossRef]

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