碳中性燃料
二氧化碳
超临界二氧化碳
废物管理
煤
环境科学
碳捕获和储存(时间表)
发电站
工艺工程
具有碳捕获和储存功能的生物能源
储能
压缩空气储能
洁净煤技术
超临界流体
负二氧化碳排放
洁净煤
碳纤维
固碳
功率(物理)
化学
工程类
材料科学
电气工程
地质学
物理
合成气
有机化学
氢
海洋学
复合数
复合材料
量子力学
气候变化
作者
Dongzi Hu,Mingzhi Zhao,Chengfeng Zhang,Yilin Zhu,Yujie Xu,Guoqing Shen,Haisheng Chen
出处
期刊:Energy
[Elsevier BV]
日期:2025-09-05
卷期号:336: 138342-138342
被引量:6
标识
DOI:10.1016/j.energy.2025.138342
摘要
The application of large-scale energy storage technology is an effective approach to enhancing the flexible regulation capability of power systems. Supercritical compressed carbon dioxide energy storage (SC-CCES) technology is among the most promising methods for large-scale energy storage. This paper proposes a coupled system integrating SC-CCES with carbon capture coal-fired units. The system utilizes the S-CO 2 from carbon capture coal-fired units as the working medium for the SC-CCES system, eliminating the need for a low-pressure gas storage chamber in the SC-CCES system. A thermodynamic model of the coupled system is developed, and its thermal characteristics are analyzed using a peak shaving scheme. The results indicate that the SC-CCES system enhances both the peaking flexibility and peaking depth of the coupled system compared to the carbon capture coal-fired unit alone. In pure storage mode, the coupled system can save up to 52.1 g/kWh of coal consumption during a peak shaving cycle, achieving a round-trip efficiency of 70.1 % and an energy density of 10.87 kWh/m 3 . When operating in electricity storage with heat storage mode, the SC-CCES system uses the reheated steam from the coal-fired unit to heat S-CO 2 , resulting in an energy storage efficiency of 45.49 %, an energy density of 23.1 kWh/m 3 , and a required high-pressure gas storage chamber volume of 851.4 m 3 /h. This study offers significant insights for the development of CO 2 -based energy storage technologies and supports the goals of ' carbon neutrality and peak carbon emissions reduction'.
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