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Oversizing analysis in plant-wide control design for industrial processes

机译:工业过程全厂控制设计中的过大分析

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摘要

In this work, an alternative plant-wide control design approach based on oversizing analysis is presented. The overall strategy can be divided in two main sequential tasks: 1 - defining the optimal decentralized control structure, and 2 - setting the controller interaction degree and its implementation. Both problems represent combinatorial optimizations based on multi-objective functional costs and were solved efficiently by genetic algorithms. The first task defines the optimal selection of controlled and manipulated variables simultaneously, the input-output pairing, and the overall controller dimension in a sum of square deviations context. The second task analyzes the potential improvements by defining the controller interaction degree via the net load evaluation approach. In addition, some insights are given about the feasibility (implementation load) of these control structures for a decentralized or centralized framework. The well-known Tennessee Eastman (TE) process is selected here for sake of comparison with other multivariable control designs.
机译:在这项工作中,提出了基于超尺寸分析的另一种全厂范围控制设计方法。总体策略可分为两个主要的顺序任务:1-定义最佳分散控制结构,以及2-设置控制器交互程度及其实现。这两个问题都代表了基于多目标功能成本的组合优化,并通过遗传算法得以有效解决。第一项任务是在平方偏差的总和中定义同时选择受控变量和受控变量的最佳选择,输入输出配对以及总体控制器尺寸。第二项任务是通过净负载评估方法定义控制器的交互程度来分析潜在的改进。此外,对于分散或集中式框架的这些控制结构的可行性(实施负载)也给出了一些见解。为了与其他多变量控制设计进行比较,此处选择了著名的田纳西州伊士曼(TE)过程。

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