首页> 外文期刊>Energy Reports >The 6th International Conference on Power and Energy Systems Engineering (CPESE 2019), September 20–23, 2019, Okinawa, Japan Dynamic model and control system of carbon dioxide capture process in fluidized bed using computational fluid dynamics
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The 6th International Conference on Power and Energy Systems Engineering (CPESE 2019), September 20–23, 2019, Okinawa, Japan Dynamic model and control system of carbon dioxide capture process in fluidized bed using computational fluid dynamics

机译:第六次国际电力和能源系统会议工程(CPESE 2019),2019年9月20日至23日,利用计算流体动力学在流化床中的冲绳,日本动态模型和控制系统

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Nowadays, the concentration of greenhouse gases in the atmosphere has been growing continuously due to the increase of energy consumption, generated from carbon-based fuels and has created global warming. In this study, a model of carbon dioxide capture adsorption in a fluidized bed reactor was developed based on experimental data using commercial CFD program called ANSYS FLUENT. Then the model was employed to observe the hydrodynamics behavior and the dynamic responses of COsub2/sub capture inside the adsorber when the operating variables were changed. The effects of operating variables on carbon dioxide capture were evaluated. From the simulation results, both the inlet gas velocity and the inlet solid circulation rate affected the carbon dioxide capture. The relationships between inlet gas velocity and inlet solid circulation rate to the percentage of carbon dioxide capture were investigated and analyzed by using system identification toolbox in MATLAB. After that, these relationships were used to design a control system. For the considered control system, the inlet solid circulation rate was selected to be a manipulated variable, while the inlet gas velocity, composition and temperature were designated as system disturbances. The controlled variable was carbon dioxide content remaining in the flue gas at the outlet. It was found that the control system could maintain the concentration of carbon dioxide in the flue gas at a specified value.
机译:如今,由于碳燃料产生的能耗的增加,大气中温室气体的浓度一直在不断增长,并从基于碳的燃料产生并创造了全球变暖。在该研究中,基于使用名为Ansys流畅的商业CFD程序的实验数据开发了流化床反应器中的二氧化碳捕获吸附模型。然后,当操作变量发生变化时,采用该模型观察流体动力学行为和CO 2 捕获的动态响应。评估了操作变量对二氧化碳捕获的影响。从仿真结果,入口气体速度和入口固体循环速率都影响了二氧化碳捕获。研究和分析了MATLAB中的系统识别工具箱,研究了入口气体速度和入口固体循环速率与二氧化碳捕获百分比的关系。之后,这些关系用于设计控制系统。对于所考虑的控制系统,选择入口固体循环速率为操纵变量,而入口气体速度,组合物和温度被指定为系统扰动。受控变量是在出口处残留在烟道气中的二氧化碳含量。发现控制系统可以在特定值下保持烟道气中的二氧化碳浓度。

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