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Modeling the solids circulation rates and solids inventories of an interconnected circulating fluidized bed reactor system for CO2 capture by calcium looping

机译:互连的循环流化床反应器系统的固体循环速率和固体存量建模,用于通过钙循环捕获CO2

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Postcombustion CO2 capture systems that use CaO as a regenerable CO2 sorbent in two interconnected circulating fluidized beds (CFBs) are rapidly developing at increasing scale. The properties of the circulating materials, the reactor geometries and operating conditions (gas velocities and temperature ranges) are remarkably similar to those present in existing large scale circulating fluidized bed combustors, CFBCs. In this work a fluid-dynamic model published for CFBCs is adopted and applied to the study of the interconnected twin reactor calcium looping (CaL) system. The model was used to find operating windows that will allow the CaL system to be applied on a large scale. It was found that when operating at high gas velocities (4-5 m/s) in the carbonator, unacceptably high solids circulation rates might be present when high bed inventories are in place to achieve large CO2 capture efficiencies. An additional loop to allow the internal circulation of the excess solids can be quantified with the help of the model used in this work.
机译:在两个相互连接的循环流化床(CFB)中使用CaO作为可再生CO2吸附剂的燃烧后CO2捕集系统正在迅速发展。循环材料的特性,反应器的几何形状和运行条件(气体速度和温度范围)与现有的大型循环流化床燃烧器CFBC中存在的特性非常相似。在这项工作中,采用了针对CFBC的流体动力学模型,并将其应用于互连双反应器钙环化(CaL)系统的研究。该模型用于查找允许将CaL系统大规模应用的操作窗口。已经发现,当在碳酸化器中以高气体速度(4-5 m / s)运行时,如果存在大量床层存量以实现大的CO2捕集效率,则可能存在不可接受的高固体循环率。借助此工作中使用的模型,可以量化允许多余固体内部循环的附加回路。

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