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Residence Time Regulation in Chemical Processes: Local Optimal Control Realization by Differential Neural Networks

机译:化工过程中的停留时间调节:通过差分神经网络实现局部最优控制

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A new method to design local optimal controller for uncertain system governed by continuous flow transformations (CFT) is presented. The on-line solution of the adaptive gains adjusting a linear control form yields the calculus of the sub-optimal controller. A special performance index, oriented to solve the transient evolution of CFT systems, is proposed. The class of systems considered in this study is highly uncertain: some components of chemical reactions are no measurable on line and then, they cannot be used in the controller realization. The recovering of this information was executed by a differential neural network (DNN) structure. The ozonation process of a single contaminant (as the particular example of CFT) is evaluated in detail using the control design proposed here.
机译:提出了一种基于连续流变换(CFT)的不确定系统局部最优控制器设计方法。调整线性控制形式的自适应增益的在线解决方案会产生次优控制器的演算。提出了一种专门针对CFT系统瞬态演化的性能指标。本研究中考虑的系统类别高度不确定:化学反应的某些组成部分无法在线测量,因此无法用于控制器的实现。该信息的恢复是通过差分神经网络(DNN)结构执行的。使用此处提出的控制设计,对单个污染物(作为CFT的特定示例)的臭氧化过程进行了详细评估。

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