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Evaluation study of an efficient output feedback nonlinear model predictive control for temperature tracking in an industrial batch reactor

机译:工业间歇反应器中温度跟踪的有效输出反馈非线性模型预测控制的评估研究

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摘要

The paper illustrates the benefits of nonlinear model predictive control (NMPC) for the setpoint tracking control of an industrial batch polymerization reactor. Real-time feasibility of the on-line optimization problem from the NMPC is achieved using an efficient multiple shooting algorithm. A real-time formulation of the NMPC that takes computational delay into account is described. The control relevant model for the NMPC is derived from the complex-first principles model and is fitted to the experimental data using maximum likelihood estimation. A parameter adaptive extended Kalman filter (PAEKF) is used for state estimation and on-line model adaptation. The performance of the NMPC implementation is assessed via simulation and experimental results.
机译:本文阐述了非线性模型预测控制(NMPC)对工业间歇聚合反应器设定值跟踪控制的好处。使用高效的多重射击算法,可以实现NMPC在线优化问题的实时可行性。描述了考虑计算延迟的NMPC实时公式。 NMPC的控制相关模型是从复数优先原理模型中得出的,并使用最大似然估计将其拟合到实验数据中。参数自适应扩展卡尔曼滤波器(PAEKF)用于状态估计和在线模型自适应。通过仿真和实验结果评估了NMPC实施的性能。

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