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Sequential and Iterative Distributed Model Predictive Control of Nonlinear Process Systems Subject to Asynchronous Measurements

机译:异步测量的非线性过程系统的顺序和迭代分布式模型预测控制

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In this work, we focus on sequential and iterative distributed model predictive control (DMPC) of large scale nonlinear process systems subject to asynchronous measurements. Assuming that there is an upper bound on the maximum interval between two consecutive asynchronous measurements, we design DMPC schemes that take into account asynchronous feedback explicitly via Lyapunov techniques. Sufficient conditions under which the proposed distributed control designs guarantee that the states of the closed-loop system are ultimately bounded in regions that contain the origin are provided. The theoretical results are illustrated through a catalytic alkylation of benzene process example.
机译:在这项工作中,我们专注于经过异步测量的大规模非线性过程系统的顺序和迭代分布式模型预测控制(DMPC)。假设两个连续异步测量之间的最大间隔上有一个上限,我们设计了DMPC方案,该方案通过Lyapunov技术明确地考虑了异步反馈。所提出的分布式控制设计的充分条件保证闭环系统的状态最终在提供原点的区域中界定。通过苯处理实例的催化烷基化来说明理论结果。

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