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Modelling and dynamic simulation of a supercritical, oxy combustion circulating fluidized bed power plant concept-Firing mode switching case

机译:超临界氧燃烧循环流化床电站建模与动力学仿真-点火模式切换案例

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Dynamic process simulation provides a tool to evaluate operational issues of a new process concept before the plant construction. This paper studies a carbon capture and storage (CCS) capable power plant concept with a model including a supercritical once-through CFB boiler with gas and water steam sides, a turbine island, an interface from the air separation unit (ASU) and the control system to manage typical operational transients. Switching between the air and oxy firing modes is one of the key operations in oxy combustion processes. The selected mode switching strategy uses simultaneous linear ramps for the mass flows of the primary and secondary air, oxygen, and recirculated flue gas. The results show that the firing mode can be successfully switched within 25-37 min. The flue gas path difference between the air-firing and oxy-firing modes due to the flue gas recirculation causes significant differences in dynamic behaviour. The simulations emphasize importance of good control and coordination of the gas flows. Feedback control of the flue gas and/or oxidants O-2 content during the mode switching is suggested to improve robustness against disturbances, for example, in oxygen delivery, flow measurements, fuel feeding and combustion
机译:动态过程仿真提供了在工厂建设之前评估新过程概念的操作问题的工具。本文研究了具有碳捕集与封存(CCS)功能的发电厂概念,该模型包括一个超临界直流CFB锅炉,该锅炉具有燃气和水蒸气侧,一个涡轮机岛,一个空气分离单元(ASU)和控制装置的接口系统来管理典型的操作瞬变。空气和氧气燃烧模式之间的切换是氧气燃烧过程中的关键操作之一。选定的模式切换策略对初级和次级空气,氧气和再循环烟道气的质量流量使用同时的线性斜坡。结果表明,射击模式可以在25-37分钟内成功切换。由于烟气再循环,在空气燃烧模式和氧气燃烧模式之间的烟气路径差异会导致动态行为的显着差异。模拟强调了良好控制和协调气流的重要性。建议在模式切换期间对烟气和/或氧化剂O-2含量进行反馈控制,以提高抵抗干扰的鲁棒性,例如在氧气输送,流量测量,燃料供给和燃烧中

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