发电站
工艺工程
碳捕获和储存(时间表)
储能
联合循环
资本成本
发电
基本负荷发电厂
工作(物理)
工程类
功率(物理)
环境科学
可再生能源
机械工程
电气工程
分布式发电
涡轮机
气候变化
物理
生物
量子力学
生态学
作者
Calin-Cristian Cormos,Letitia Petrescu,Ana-Maria Cormos
出处
期刊:Computer-aided chemical engineering
日期:2022-01-01
卷期号:: 631-636
标识
DOI:10.1016/b978-0-323-95879-0.50106-5
摘要
This work evaluates the integration of an innovative thermo-chemical energy storage system based on calcium-derived sorbents for flexible operation of decarbonized coalfueled super-critical power plant. The reactive gas-solid cycle is used for both power plant decarbonization as well as a time-flexible thermo-chemical energy storage system in conjunction to a 500 MW net power output plant with 90% carbon capture rate. Overall techno-economic and environmental implications of flexible decarbonized power plant with calcium-based thermo-chemical energy storage system were evaluated using process flow modeling and thermal integration. For comparison reason, similar decarbonized power plant operated in base-load conditions as well as a non-capture power plant were also considered. As the results show, the utilization of calcium looping cycle for time-flexible thermo-chemical energy storage system in conjunction to a decarbonized fossil-based power plant bring significant benefits in term of reducing the specific capital cost (down to about 8%), the electricity production cost (down to about 3.6%), the CO 2 capture costs (down to about 3.5%), all compared to the base-load operation of similar decarbonized power plant. Although very promising in delivering better techno-economic performance indicators, the calcium looping technology still requires significant scale-up efforts from the current development level (up to 10 MW) to full industrial sizes.
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