A novel isobaric adiabatic compressed air energy storage (IA-CAES) system on the base of volatile fluid

被引:71
作者
Chen, Long Xiang [1 ]
Xie, Mei Na [1 ]
Zhao, Pan Pan [3 ]
Wang, Feng Xiang [1 ]
Hu, Peng [2 ]
Wang, Dong Xiang [4 ]
机构
[1] Chinese Acad Sci, Haixi Inst, Quanzhou Inst Equipment Mfg, Jinjiang 362200, Peoples R China
[2] Univ Sci & Technol China, Dept Thermal Sci & Energy Engn, Hefei 230027, Anhui, Peoples R China
[3] Hefei Gen Machinery Res Inst, Hefei 230088, Anhui, Peoples R China
[4] Hefei Meiling Co Ltd Co Ltd, Hefei 230601, Anhui, Peoples R China
基金
中国国家自然科学基金;
关键词
Adiabatic compressed air energy storage; IA-CAES; Isobaric; CO2; mixtures; Thermodynamic analyses; Waste heat; THERMODYNAMIC ANALYSIS; WASTE HEAT; SIMULATION; PERFORMANCE; PLANT;
D O I
10.1016/j.apenergy.2017.11.009
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Adiabatic compressed air energy storage (A-CAES) is regarded as a promising and emerging storage technology with excellent power and storage capacity. Currently, efficiencies are approximately 70%, in part due to the issue of exergy losses during the throttling of compressed air. To increase the performance of the system, a novel isobaric adiabatic compressed air energy storage (IA-CAES) is proposed on the base of volatile fluid. The air storage vessel is divided into two parts by a piston, one part for air storage and the other has introduced into suitable volatile fluid. The waste heat is utilized to keep the volatile in a desirable pressure in discharging process, which impairs the effect of ambient temperature on pressure of volatile and makes the IA-CAES system stable. CO2 is selected as the pure volatile fluid own to its environmentally properties and high saturation pressure, while the IA-CAES system based on the CO2 can work in the mid and high latitudes only, due to its low critical temperature (304.13 K). 3 binary mixtures namely CO2/HC-600, CO2/HFC-32 and CO2/HFO-1234ze(E) are investigated to improve the critical temperature of CO2, trends to adapt to a wide range of ambient temperatures for IA-CAES system. The thermodynamic analysis including energy analysis, exergy analysis and the parametric analysis are evaluated by using steady-state mathematical model and thermodynamic laws. The calculations show, when CO2 is selected as the pure volatile fluid and the ambient temperature is higher than 288.15 K (15 degrees C), the average of total exergy efficiency (TEE) of IA-CAES improves more than 4% compared with that of A-CAES. When the waste heat is considered as free, the round trip efficiency (RTE) improved more than 6% and power capacity increased by more than 49% compared to the conventional A-CAES system. The CO2/HC-600 mixture with the compositions 0.85/0.15 has been proposed as the mixture volatile fluid. Compare with the conventional A-CAES system, the RTE and discharge time improved 6.26% and increased by 56.44%, respectively. Meanwhile, a parametric analysis is also carried out to evaluate the effects of several key parameters on the system performance of the IA-CAES systems.
引用
收藏
页码:198 / 210
页数:13
相关论文
共 30 条
[1]   Low pressure, modular compressed air energy storage (CAES) system for wind energy storage applications [J].
Alami, Abdul Hai ;
Aokal, Kamilia ;
Abed, Jehad ;
Alhemyari, Mohammad .
RENEWABLE ENERGY, 2017, 106 :201-211
[2]  
[Anonymous], 2013, NIST STANDARD REFERE, V23
[3]   A novel mathematical model for the performance assessment of diabatic compressed air energy storage systems including the turbomachinery characteristic curves [J].
Briola, Stefano ;
Di Marco, Paolo ;
Gabbrielli, Roberto ;
Riccardi, Juri .
APPLIED ENERGY, 2016, 178 :758-772
[4]   A review on compressed air energy storage: Basic principles, past milestones and recent developments [J].
Budt, Marcus ;
Wolf, Daniel ;
Span, Roland ;
Yan, Jinyue .
APPLIED ENERGY, 2016, 170 :250-268
[5]  
Calm JM, 2011, 23 INT C REFR
[6]   A novel compressed air energy storage (CAES) system combined with pre-cooler and using low grade waste heat as heat source [J].
Chen, Long-Xiang ;
Hu, Peng ;
Sheng, Chun-Chen ;
Xie, Mei-Na .
ENERGY, 2017, 131 :259-266
[7]   Parameters affecting scalable underwater compressed air energy storage [J].
Cheung, Brian C. ;
Carriveau, Rupp ;
Ting, David S. -K. .
APPLIED ENERGY, 2014, 134 :239-247
[8]   Opportunities and challenges for a sustainable energy future [J].
Chu, Steven ;
Majumdar, Arun .
NATURE, 2012, 488 (7411) :294-303
[9]   Synergy of smart grids and hybrid distributed generation on the value of energy storage [J].
Del Granado, Pedro Crespo ;
Pang, Zhan ;
Wallace, Stein W. .
APPLIED ENERGY, 2016, 170 :476-488
[10]   The value of compressed air energy storage with wind in transmission-constrained electric power systems [J].
Denholm, Paul ;
Sioshansi, Ramteen .
ENERGY POLICY, 2009, 37 (08) :3149-3158