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Nonlinear model predictive control based on multi-linear models of an unstable chemical reactor

机译:基于不稳定化学反应器多线性模型的非线性模型预测控制

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It is well known that operating a process under unstable conditions is a challenging control problem. In this article, by use of basic concepts of the weighted space distance, a set of locally linearized models is simply and effectively combined into a global description of a nonlinear plant. To reduce the computational load, these multiple linear models are then used as prediction equations in an MPC framework. Simultaneously, some parameter tuning strategies are presented to guarantee low overshoot and good robustness for the predictive control system. The effectiveness of the proposed multiple linear model predictive control with state estimation is demonstrated through its application to the exothermic chemical reactor, which is a typical nonlinear unstable process. [References: 20]
机译:众所周知,在不稳定条件下操作过程是一个挑战性的控制问题。在本文中,通过使用加权空间距离的基本概念,可以将一组局部线性化的模型简单有效地组合到非线性植物的全局描述中。为了减少计算量,然后将这些多个线性模型用作MPC框架中的预测方程。同时,提出了一些参数调整策略,以确保预测控制系统的过低和良好的鲁棒性。通过将其应用于典型的非线性不稳定过程放热化学反应器,证明了所提出的带状态估计的多线性模型预测控制的有效性。 [参考:20]

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