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Nonlinear Min-Max Model Predictive Control based on Volterra models. Application to a pilot plant

机译:基于Volterra模型的非线性MIN-MAX模型预测控制。在飞行员申请

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This paper presents a new Nonlinear Min-Max Model Predictive Control strategy based on Volterra models. This control strategy is computationally efficient as the exact worst case cost can be computed in polynomial time. The reduced complexity of the proposed strategy allows its use in real time applications with typical prediction and control horizons. The controller has been implemented to control the temperature of a chemical reaction in the reactor of a pilot plant. A non-autoregressive second order Volterra series model has been identified from experimental data and used as a prediction model. The controller behavior is illustrated by experimental results.
机译:本文介绍了基于Volterra模型的新非线性MIN-MAX模型预测控制策略。由于可以在多项式时间中计算精确的最坏情况成本,因此控制策略是计算的。拟议策略的复杂性降低允许其在具有典型预测和控制视野的实时应用中的应用。已经实施了控制器以控制试验厂的反应器中化学反应的温度。已经从实验数据中识别出非自动增加的二阶Volterra系列模型并用作预测模型。控制器行为通过实验结果说明。

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