| 1 | AMIRANTE R, CASSONE E, DISTASO E, et al. Overview on recent developments in energy storage: Mechanical, electrochemical and hydrogen technologies[J]. Energy Conversion and Management, 2017, 132: 372-387. | 
																													
																						| 2 | LUO X, WANG J H, DOONER M, et al. Overview of current development in electrical energy storage technologies and the application potential in power system operation[J]. Applied Energy, 2015, 137: 511-536. | 
																													
																						| 3 | CHEN S, ZHU T, GAN Z X, et al. Optimization of operation strategies for a combined cooling, heating and power system based on adiabatic compressed air energy storage[J]. Journal of Thermal Science, 2020, 29(5): 1135-1148. | 
																													
																						| 4 | 刘佳, 夏红德, 陈海生, 等. 新型液化空气储能技术及其在风电领域的应用[J]. 工程热物理学报, 2010, 31(12): 1993-1996. | 
																													
																						|  | LIU J, XIA H D,CHENG H S, et al. A novel energy storage technology based on liquid air and its application in wind power[J]. Journal of Engineering Thermophysics, 2010, 31(12): 1993-1996. | 
																													
																						| 5 | CHAYCHIZADEH F, DEHGHANDOROST H, ALIABADI A, et al. Stochastic dynamic simulation of a novel hybrid thermal-compressed carbon dioxide energy storage system (T-CCES) integrated with a wind farm[J]. Energy Conversion and Management, 2018, 166: 500-511. | 
																													
																						| 6 | ZHANG X R, WANG G B. Thermodynamic analysis of a novel energy storage system based on compressed CO2 fluid[J]. International Journal of Energy Research, 2017, 41: 1487-1503. | 
																													
																						| 7 | MORANDIN M, MARÉCHAL F, MERCANGÖZ M, et al, Conceptual design of a thermo-electrical energy storage system based on heat integration of thermodynamic cycles—Part A: Methodology and base case[J]. Energy, 2012, 45(1): 375-385. | 
																													
																						| 8 | MORANDIN M, MARÉCHAL F, MERCANGÖZ M, et al. Conceptual design of a thermo-electrical energy storage system based on heat integration of thermodynamic cycles—Part B: Alternative system configurations[J]. Energy, 2012, 45(1): 386-396. | 
																													
																						| 9 | MORANDIN M, MARÉCHAL M, HEMRLE J, et al. Thermoeconomic design optimization of a thermo-electric energy storage system based on transcritical CO2 cycles[J]. Energy, 2013, 58: 571-587. | 
																													
																						| 10 | 吴毅, 胡东帅, 王明坤, 等. 一种新型的跨临界CO2储能系统[J]. 西安交通大学学报, 2016, 50(3): 45-49, 100.WU Y, HU D S, WANG M K, et al. A novel transcritical CO2 energy storage system[J]. Journal of Xi'an Jiaotong University, 2016, 50(3): 45-49, 100. | 
																													
																						| 11 | ZHANG Y, YANG K, HONG H, et al. Thermodynamic analysis of a novel energy storage system with carbon dioxide as working fluid[J]. Renewable Energy, 2016, 99: 682-697. | 
																													
																						| 12 | 李玉平. 压缩二氧化碳储能系统的热力学性能分析[D]. 北京: 华北电力大学, 2018.LI Y P. Thermal performance analysis of the compressed carbon dioxide energy storage system[D]. Beijing: North China Electric Power University, 2018. | 
																													
																						| 13 | WANG M K, ZHAO P, WU Y, et al. Performance analysis of a novel energy storage system based on liquid carbon dioxide[J]. Applied Thermal Engineering, 2015, 91: 812-823. | 
																													
																						| 14 | LIU S C, WU S C, HU Y K, et al. Comparative analysis of air and CO2 as working fluids for compressed and liquefied gas energy storage technologies[J]. Energy Conversion and Management, 2019, 181: 608-620. | 
																													
																						| 15 | MONTAZERINEJAD H, AHMADI P, MONTAZERINEJAD Z. Advanced exergy, exergo-economic and exergo-environmental analyses of a solar based trigeneration energy system[J]. Applied Thermal Engineering, 2019, 152: 666-685. | 
																													
																						| 16 | SOLTANI S, YARI M, MAHMOUDI S M S, et al. Advanced exergy analysis applied to an externally-fired combined-cycle power plant integrated with a biomass gasification unit[J]. Energy, 2013, 59: 775-780. | 
																													
																						| 17 | VUČKOVIĆ G, VUKIĆ M, STOJILJKOVIĆ M, et al. Avoidable and unavoidable exergy destruction and exergoeconomic evaluation of the thermal processes in a real industrial plant[J]. Thermal Science, 2012, 16: 433-446. | 
																													
																						| 18 | MOROSUK T, TSATSARONIS G. A new approach to the exergy analysis of absorption refrigeration machines[J]. Energy, 2008, 33(6): 890-907. | 
																													
																						| 19 | FALLAH M, MAHMOUDI S M S, YARI M, et al. Advanced exergy analysis of the Kalina cycle applied for low temperature enhanced geothermal system[J]. Energy Conversion and Management, 2016, 108: 190-201. | 
																													
																						| 20 | BAI T, YU J L, YAN G. Advanced exergy analyses of an ejector expansion transcritical CO2 refrigeration system[J]. Energy Conversion and Management, 2016, 126: 850-861. | 
																													
																						| 21 | ERBAY Z, HEPBASLI A. Application of conventional and advanced exergy analyses to evaluate the performance of a ground-source heat pump (GSHP) dryer used in food drying[J]. Energy Conversion and Management, 2014, 78: 499-507. | 
																													
																						| 22 | GUNGOR A, ERBAY Z, HEPBASLI A, et al. Splitting the exergy destruction into avoidable and unavoidable parts of a gas engine heat pump (GEHP) for food drying processes based on experimental values[J]. Energy Conversion and Management, 2013, 73: 309-316. | 
																													
																						| 23 | KELLY S, TSATSARONIS G, MOROSUK T, et al. Advanced exergetic analysis: Approaches for splitting the exergy destruction into endogenous and exogenous parts[J]. Energy, 2009, 34(3): 384-391. | 
																													
																						| 24 | LIU Z, LIU B, GUO J Z, et al. Conventional and advanced exergy analysis of a novel transcritical compressed carbon dioxide energy storage system[J]. Energy Conversion and Management, 2019, 198: doi: 10.1016/j.enconman.2019.111807. | 
																													
																						| 25 | ZHANG Y, YAO E R, TIAN Z, et al. Exergy destruction analysis of a low-temperature compressed carbon dioxide energy storage system based on conventional and advanced exergy methods[J]. Applied Thermal Engineering, 2021, 185: doi:10.1016/j.applthermaleng. 2020.116421. | 
																													
																						| 26 | LIU Z, LIU Z H, YANG X Q, et al. Advanced exergy and exergoeconomic analysis of a novel liquid carbon dioxide energy storage system[J]. Energy Conversion and Management, 2020, 205: doi: 10.1016/j.enconman.2019.112391. | 
																													
																						| 27 | ZHANG Y, LIANG T Y, YANG C, et al. Advanced exergy analysis of an integrated energy storage system based on transcritical CO2 energy storage and organic Rankine cycle[J]. Energy Conversion and Management, 2020, 216: doi: 10.1016/j.enconman.2020.112938. | 
																													
																						| 28 | HE Q, LIU H, HAO Y P, et al. Thermodynamic analysis of a novel supercritical compressed carbon dioxide energy storage system through advanced exergy analysis[J]. Renewable Energy, 2018, 127: 835-849. | 
																													
																						| 29 | CZIESLA F, TSATSARONIS G, GAO Z L. Avoidable thermodynamic inefficiencies and costs in an externally fired combined cycle power plant[J]. Energy, 2006, 31(10/11): 1472-1489. |