超临界流体
熔盐
碳捕获和储存(时间表)
燃烧
煤
工艺工程
废物管理
发电站
环境科学
碳纤维
热能储存
燃煤
工程类
化学
材料科学
冶金
热力学
电气工程
气候变化
有机化学
复合材料
物理
复合数
生物
生态学
作者
Xianhao Chen,Zhuoyue Shi,Ziteng Zhang,Mingjuan Zhu,Eni Oko,Xiao Wu
出处
期刊:Energy
[Elsevier BV]
日期:2024-08-24
卷期号:308: 132961-132961
被引量:15
标识
DOI:10.1016/j.energy.2024.132961
摘要
Reducing carbon footprints and enhancing operational flexibility are crucial for the future development of coal-fired power plants (CFPPs). This necessitates the deployment of post-combustion carbon capture (PCC) and molten-salt heat storage (MSHS) systems. Given the various integration schemes and complex interactions, understanding the comprehensive performance of the integrated CFPP-PCC-MSHS system is important. This paper proposes an integration scheme for 1000MWe ultra-supercritical CFPP, solvent-based PCC and MSHS, achieving cascade energy utilization. A dynamic simulation model for the CFPP-PCC-MSHS system is developed to understand the dynamic couplings between subsystems. Comprehensive performance analyses are conducted to evaluate the thermodynamics, flexibility and safety of the integrated system under various operating conditions. Simulation results indicate that deploying MSHS reduces the thermal and exergy efficiencies of the CFPP-PCC system by 0.18 % and 0.19 %, respectively, but effectively expands the adjustable power load range by 6.08 % under the fixed 90 % CO 2 capture rate mode. Meanwhile, the integration of MSHS offers alternative pathways to improve the power ramping rate to 13.33 MW/min. The heat charging/discharging process of MSHS induces fluctuations in temperature and pressure within the turbine, potentially affecting plant operating safety. This paper provides useful insights for the design, retrofit and operation of new generation of CFPPs.
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