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Hierarchical Control Strategy based on Robust MPC and Integral Sliding mode - Application to a Continuous Photobioreactor

机译:基于鲁棒MPC和整体滑动模式的分层控制策略 - 应用于连续的光生物反应器

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This paper proposes the design of a hierarchical control strategy formed by a two-level controller: a Linearized Robust MPC (LRMPC) and an Integral Sliding Mode (ISM) control laws. The proposed strategy guarantees robustness towards parameters mismatch for a macroscopic continuous photobioreactor model, obtained from mass balance based modelling. Firstly, as a starting point, this work focuses on classical robust nonlinear model predictive control law under model parameters uncertainties implying solving a basic min-max optimization problem for setpoint trajectory tracking. We reduce this problem into a regularized optimization problem based on the use of linearization techniques, to ensure a good trade-off between tracking accuracy and computation time. Secondly, in order to eliminate the static error due to the fact that the nonlinear model is approximated through linearization in the LRMPC law, an ISM controller is synthesized relying on the knowledge of the nonlinear model of the system. Finally, the efficiency of the developed hierarchical approach is illustrated through numerical results and robustness against parameter uncertainties is discussed for the worst case model mismatch.
机译:本文提出了由双层控制器形成的分层控制策略的设计:线性化的鲁棒MPC(LRMPC)和整体滑动模式(ISM)控制规律。所提出的策略保证了从基于质量平衡的建模获得的宏观连续光生物反应器模型的参数不匹配的鲁棒性。首先,作为一个起点,这项工作侧重于模型参数的经典鲁棒非线性模型预测控制定律,这是针对求解设定点轨迹跟踪的基本最小最大优化问题的典型参数不确定性。基于线性化技术的使用,将此问题降低到正则化优化问题中,以确保跟踪精度和计算时间之间的良好折衷。其次,为了消除由于LRMPC法中的线性化近似的事实,以消除静态误差,以ISM控制器依赖于系统的非线性模型的知识。最后,通过数值结果来说明开发的分层方法的效率,并且讨论了对最坏情况模型不匹配的鲁棒性反对参数不确定性的鲁棒性。

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