超临界流体
火用
节气门
压缩空气储能
可用能
储存效率
储能
灵敏度(控制系统)
压缩空气
工艺工程
压缩氢
高效能源利用
核工程
化学
机械工程
热力学
工程类
氢气储存
物理
电气工程
计算机科学
电子工程
数据库
功率(物理)
有机化学
合金
作者
Huan Guo,Yujie Xu,Haisheng Chen,Xuezhi Zhou
标识
DOI:10.1016/j.enconman.2016.01.051
摘要
A novel supercritical compressed air energy storage (SC-CAES) system is proposed by our team to solve the problems of conventional CAES. The system eliminates the dependence on fossil fuel and large gas-storage cavern, as well as possesses the advantages of high efficiency by employing the special properties of supercritical air, which is significant for the development of electrical energy storage. The thermodynamic model of the SC-CAES system is built, and the thermodynamic characters are revealed. Through the exergy analysis of the system, the processes of the larger exergy destruction include compression, expansion, cold storage/heat exchange and throttle. Furthermore, sensitivity analysis shows that there is an optimal energy releasing pressure to make the system achieve the highest efficiency when energy storage pressure is constant. The efficiency of SC-CAES is expected to reach about 67.41% when energy storage pressure and energy releasing pressure are 120 bar and 95.01 bar, respectively. At the same time, the energy density is 18 times larger than that of conventional CAES. Sensitivity analysis also shows the change laws of system efficiency varying with other basic system parameters. The study provides support for the design and engineering of SC-CAES.
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