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用于模型预测控制的多目标优化

Multi-objective optimization for model predictive control.

作者信息

Wojsznis Willy, Mehta Ashish, Wojsznis Peter, Thiele Dirk, Blevins Terry

机构信息

Emerson Process Management, 12301 Research Blvd., Austin, TX 78759, USA.

出版信息

ISA Trans. 2007 Jun;46(3):351-61. doi: 10.1016/j.isatra.2006.10.002. Epub 2007 Mar 23.

Abstract

This paper presents a technique of multi-objective optimization for Model Predictive Control (MPC) where the optimization has three levels of the objective function, in order of priority: handling constraints, maximizing economics, and maintaining control. The greatest weights are assigned dynamically to control or constraint variables that are predicted to be out of their limits. The weights assigned for economics have to out-weigh those assigned for control objectives. Control variables (CV) can be controlled at fixed targets or within one- or two-sided ranges around the targets. Manipulated Variables (MV) can have assigned targets too, which may be predefined values or current actual values. This MV functionality is extremely useful when economic objectives are not defined for some or all the MVs. To achieve this complex operation, handle process outputs predicted to go out of limits, and have a guaranteed solution for any condition, the technique makes use of the priority structure, penalties on slack variables, and redefinition of the constraint and control model. An engineering implementation of this approach is shown in the MPC embedded in an industrial control system. The optimization and control of a distillation column, the standard Shell heavy oil fractionator (HOF) problem, is adequately achieved with this MPC.

摘要

本文提出了一种用于模型预测控制(MPC)的多目标优化技术,该优化在目标函数上有三个优先级层次:处理约束、最大化经济性和维持控制。最大权重被动态分配给预计超出其限制的控制或约束变量。为经济性分配的权重必须超过为控制目标分配的权重。控制变量(CV)可以在固定目标处或在目标周围的单边或双边范围内进行控制。操纵变量(MV)也可以有指定的目标,这些目标可以是预定义值或当前实际值。当未为部分或所有MV定义经济目标时,此MV功能非常有用。为了实现这种复杂操作、处理预计超出限制的过程输出并确保在任何条件下都有解决方案,该技术利用了优先级结构、对松弛变量的惩罚以及对约束和控制模型的重新定义。在工业控制系统中嵌入的MPC中展示了这种方法的工程实现。使用此MPC可以充分实现蒸馏塔的优化和控制,即标准的壳牌重油分馏塔(HOF)问题。

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