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A new approach to design a control system for a FGR furnace using the combination of the CFD and linear system identification techniques

机译:结合CFD和线性系统识别技术设计FGR炉控制系统的新方法

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摘要

A new approach to design control systems for an industrial furnace with flue gas recirculation (FGR) is presented. To facilitate the control system design, a linear dynamic model is needed for the furnace. Full-scale computational fluid dynamics (CFD) simulations are used to generate the required small signal input and output data sets. Subsequently, a least squares based system identification technique is used to obtained the linear dynamic models. After model validation, feedback controller is designed based on these linear dynamic models. Finally, the performance of the designed closed-loop control system is also evaluated using both linear dynamic model and full-scale nonlinear CFD model. The comparison shows that the control system designed using the proposed approach can minimize the deviation of nitric oxides (NO) emission from the design point by minimize the dynamic NO formation, hence to prevent any excessive NO formation in the combustion process when the system subjects to disturbances.
机译:提出了一种采用烟气再循环(FGR)的工业炉设计控制系统的新方法。为了简化控制系统的设计,炉子需要一个线性动态模型。满量程计算流体动力学(CFD)模拟用于生成所需的小信号输入和输出数据集。随后,基于最小二乘的系统识别技术用于获得线性动力学模型。在模型验证之后,基于这些线性动态模型设计反馈控制器。最后,还使用线性动态模型和满量程非线性CFD模型来评估设计的闭环控制系统的性能。比较表明,使用所提出的方法设计的控制系统可以通过最小化动态NO的形成来最大程度地减少一氧化氮(NO)排放量与设计点的偏差,从而防止在燃烧过程中任何过量的NO形成。干扰。

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  • 来源
    《Combustion Theory and Modelling》 |2011年第2期|p.183-204|共22页
  • 作者

    R. Zhang C. Zhang J. Jiang;

  • 作者单位

    Department of Mechanical and Materials Engineering, The University of Western Ontario, London, Ontario, Canada, N6A 5B9;

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  • 正文语种 eng
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