卡诺循环
解耦(概率)
热电联产
火用
工艺工程
工作液
可用能
背景(考古学)
热力学系统
工程类
煤
控制理论(社会学)
功率(物理)
汽车工程
控制工程
机械工程
发电
计算机科学
废物管理
热力学
生物
物理
古生物学
人工智能
控制(管理)
作者
Dongxu Chen,Zhonghe Han,Xu Han,Peng Li
标识
DOI:10.1016/j.enconman.2023.117680
摘要
In the context of energy transition, coal-fired power generation systems must be more efficient and flexible. This study proposed a novel thermodynamic system that combines the coal-fired cogeneration (CG) and decoupled Carnot battery (CB) using CO2 as the working fluid. The ''design-operation-case'' model and analysis framework were constructed for this novel system. In the design stage, the optimal layout and design parameters for each subsystem were determined. In the operation stage, the operating domain of the novel system was explored. Finally, the feasibility of the novel system was evaluated through a case analysis. The findings include that the optimal arrangements with the highest exergy efficiencies for the CG, heat pump, and heat engine subsystems are the recompression, recuperative, and non-recuperative layouts, respectively. After parameter optimization, the exergy efficiencies of the three subsystems reach 46.24%, 69.23%, and 54.04%, respectively. The round-trip exergy efficiency of the CB is improved by 1.41%pt after decoupling. Moreover, the operating domain factor of the CG subsystem is 0.941, which is 43.87% higher than that of the traditional steam CG system. By incorporating the general CB into the CG subsystem, the operating domain area increases by 0.379 m2, which further increases by 1.467 m2 after decoupling the CB. The novel system is ultimately proven feasible.
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