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首页> 外文期刊>Journal of Chemical Engineering of Japan >Model Predictive Control of Coke Oven Gas Collector Pressure
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Model Predictive Control of Coke Oven Gas Collector Pressure

机译:焦炉集气器压力的模型预测控制

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References(20) In the light of the existing control problems in coke oven gas collector pressure systems, a model predictive control (MPC) method based on subspace identification of the gas collector pressure control system is presented. Through the analysis of a number of measurable variables, the main decision variables which affect gas collector pressure including the controllable input variables and the measurable disturbance can be obtained. The proposed method employs a subspace technique for the identification of the coke oven gas collector pressure control system, and simulates the disturbance of coal charging by a pulse signal with a certain width. A two-layer structure optimal control system of coke oven gas collector pressure is established and thus steady-state optimization and dynamic control can be realized, respectively. With consideration of the influence of measurable disturbance, we calculate the steady-state target through the degrees of freedom of the system, and then constrained MPC dynamic optimization is carried out. The algorithm has been successfully applied in the JN-8-type coke oven gas collector pressure control system of an iron and steel group, and has achieved good results.
机译:参考文献(20)针对焦炉集气压力系统存在的控制问题,提出了一种基于子空间识别集气压力控制系统的模型预测控制方法。通过对多个可测量变量的分析,可以获得影响气体收集器压力的主要决策变量,包括可控输入变量和可测量扰动。所提出的方法采用子空间技术识别焦炉集气器压力控制系统,并通过一定宽度的脉冲信号模拟了装煤扰动。建立了焦炉集气器压力的两层结构最优控制系统,可以分别实现稳态优化和动态控制。考虑到可测量干扰的影响,我们通过系统的自由度来计算稳态目标,然后进行有约束的MPC动态优化。该算法已成功应用于钢铁集团JN-8型焦炉集气器压力控制系统,取得了良好的效果。

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