储能
拐点
工艺工程
节气门
灵敏度(控制系统)
适应性
材料科学
动态范围压缩
二氧化碳
环境科学
碳捕获和储存(时间表)
高效能源利用
控制理论(社会学)
MATLAB语言
计算机数据存储
相容性(地球化学)
汽车工程
能量回收
能量(信号处理)
相变
计算机科学
压缩(物理)
理论(学习稳定性)
核工程
生物系统
机械工程
储存效率
模拟
工程类
作者
Xianbo Zhao,Guohao Chen,Shan Wang,Tianyu Deng,Zihao Huang,Zhiming Li,Chuang Wu,Kui Luo
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2025-11-11
卷期号:18 (22): 5923-5923
摘要
Compressed carbon dioxide energy storage (CCES) has emerged as a promising solution for long-duration energy storage owing to its high energy density, adaptability to diverse environments, and compatibility with carbon capture technologies. This study develops a dynamic MATLAB 2024a/Simscape model for a 10 MW × 8 h gas–liquid CCES (GL-CCES) system featuring two-stage compression and two-stage expansion. Constant-pressure operation is maintained by check and throttle valves at the boundaries of the high-pressure tank. After startup, all system variables except those associated with the storage tank stabilize rapidly. The analysis reveals several critical dynamic phenomena: (1) a persistent mass-flow imbalance between charging and discharging processes under constant-pressure operation; (2) distinct phase transitions within the high-pressure tank that produce inflection points in thermodynamic evolution; and (3) strong ambient-temperature sensitivity that dictates system stability and efficiency boundaries. The system achieves a round-trip efficiency of 70.52% at 25 °C, which decreases to 67.01% at 21 °C. More importantly, the dynamic energy density (5.15 kWh m−3) is only 12.7% of the steady-state reference value. These results demonstrate the feasibility of GL-CCES for large-scale, long-duration energy storage, while also highlighting its pronounced sensitivity to ambient conditions, underscoring the need for optimized design and adaptive operational strategies.
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