阶段(地层学)
压缩空气储能
压缩空气
火力发电站
热能储存
储能
环境科学
体积流量
工艺工程
热的
单位(环理论)
石油工程
核工程
废物管理
功率(物理)
材料科学
工程类
热力学
机械工程
数学
地质学
物理
数学教育
古生物学
作者
Chi‐Wei Chang,Ran Zhuo,Jinsong Liu,Huihuang Li,Youquan Shu,Yuetao Shi
出处
期刊:Journal of physics
[IOP Publishing]
日期:2025-08-01
卷期号:3065 (1): 012024-012024
标识
DOI:10.1088/1742-6596/3065/1/012024
摘要
Abstract With the expansion of the grid-connected scale of renewable energy, enhancing the peak shaving flexibility of Thermal Power Units (TPUs) has become a crucial requirement. This paper focuses on the thermal power-coupled two-stage steam-driven Compressed Air Energy Storage (CAES) system, concentrating on the influence of regulating the return water flow rate of the inter-stage heat exchangers on the thermodynamic performance and thermo-economic efficiency of the system. Based on the EBSILON platform, a model is constructed, and with the thermo-economic indicators and heat exchanger heat transfer parameters as optimization objectives, a collaborative optimization method for the return water flow rate of the inter-stage heat exchangers is proposed. The results show that during the energy storage stage, when the water mass flow of the heat exchanger is optimized to 165.5 t/h, the heat transfer capacity of the inter-stage heat exchanger reaches its peak, and the minimum value of the instantaneous heat rate of the coupled system drops to 8311.75 kJ/kWh. During the energy release stage, when the water mass flow is in the range of 380-412 t/h, the total power generation of the system approaches 775.998 MW, and the instantaneous heat rate remains at 6882.56 kJ/kWh.
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