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Robust Control Framework Based on Input-Output Models Enhanced with Uncertainty Estimation

机译:基于输入输出模型的鲁棒控制框架增强了不确定性估计

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摘要

A versatile and simple robust model-based control framework for regulating a class of (bio)-chemical processes is introduced. The proposed control framework departs from a simple low-order model which is enhanced by estimating model uncertainties due to model reduction, uncertain model parameters, and external disturbances. Three robust model-based control schemes are then formulated based on the enhanced simple input-output model. The proposed robust framework provides the robustness of two well-known model-based control approaches using a simple low-order model. A benchmark model of microalgae production is employed for illustrating the controller performance. Moreover, a classical PI controller and a nonlinear MPC controller are also designed and applied for comparison purposes. Numerical results show that the proposed simple robust model-based controllers are able to regulate the controlled variable to the desired reference despite external disturbances and set-point changes. Furthermore, the proposed controllers feature an acceptable performance in comparison with two of the most widely accepted controllers in the control engineering community for controlling (bio)chemical processes.
机译:介绍了用于调节一类(生物) - 化学过程的基于多功能和简单的鲁棒模型的控制框架。所提出的控制框架从简单的低阶模型中脱离,这是通过估计模型不确定性而增强的,这是由于模型减少,不确定的模型参数和外部干扰。然后基于增强的简单输入输出模型配制了三种基于模型的基于模型的控制方案。所提出的强大框架使用简单的低阶模型提供了两个基于众所周知的基于模型的控制方法的鲁棒性。使用微藻生产的基准模型用于说明控制器性能。此外,还设计了经典PI控制器和非线性MPC控制器以进行比较目的。数值结果表明,尽管外部干扰和设定点变化,所提出的简单鲁棒模型的控制器能够将受控变量调节到所需的参考。此外,所提出的控制器具有可接受的性能,与控制工程群岛中的两个最广泛接受的控制器进行控制(生物)化学过程。

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