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Robust Nonlinear Model Predictive Controller based on sensitivity analysis — Application to a continuous photobioreactor

机译:基于灵敏度分析的鲁棒非线性模型预测控制器—在连续光生物反应器中的应用

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This paper deals with the design of a predictive control law for microalgae culture process to regulate the biomass concentration at a chosen setpoint. However, the performances of the Nonlinear Model Predictive Controller usually decrease when the true plant evolution deviates significantly from that predicted by the model. Thus, a robust criterion under model's parameters uncertainties is considered, implying solving a min-max optimization problem. In order to reduce the computational burden and complexity induced by this formulation, a sensitivity analysis is carried out to determine the most influential parameters which will be considered in the optimization step. The proposed approach is validated in simulation and numerical results are given to illustrate its efficiency for setpoint tracking in the presence of parameters uncertainties.
机译:本文涉及微藻培养过程的预测控制律的设计,以在选定的设定点上调节生物量浓度。但是,当真实植物进化显着偏离模型预测时,非线性模型预测控制器的性能通常会下降。因此,考虑了模型参数不确定性下的鲁棒准则,这意味着要解决最小-最大优化问题。为了减轻此公式引起的计算负担和复杂性,进行了敏感性分析,以确定最有影响力的参数,这些参数将在优化步骤中予以考虑。仿真中验证了该方法的有效性,并给出了数值结果,以说明在存在参数不确定性的情况下其跟踪设定点的效率。

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