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首页> 外文期刊>IFAC PapersOnLine >Closed-loop Formulation for Nonlinear Dynamic Real-time Optimization * * This work is sponsored by the McMaster Advanced Control Consortium (MACC) and the Ministry of Higher Education (MOHE), Malaysia
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Closed-loop Formulation for Nonlinear Dynamic Real-time Optimization * * This work is sponsored by the McMaster Advanced Control Consortium (MACC) and the Ministry of Higher Education (MOHE), Malaysia

机译:非线性动态实时优化的闭环公式 * * 此作品由McMaster Advanced赞助控制协会(MACC)和马来西亚高等教育部(MOHE)

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Dynamic real-time optimization (DRTO) is a higher level online strategy that exploits plant economic potential by making appropriate adjustments to the lower level controller set-point trajectories. In this work, we propose a closed-loop formulation for a nonlinear DRTO calculation in the form of a bilevel programming problem. A nonlinear differential algebraic equation (DAE) system that describes the process dynamic behavior is utilized with an embedded constrained predictive control (MPC) optimization subproblem to generate the approximate closed-loop response dynamics at the primary economic optimization layer. The bilevel DRTO problem is reformulated as a single-level mathematical program with complementarity constraints (MPCC) by replacing the MPC optimization subproblem by its Karush-Kuhn-Tucker (KKT) optimality conditions. We investigate the economics and control performance of the proposed strategy based on a polymer grade transition case study in the presence of plant-model mismatch and a disturbance, and a comparison is made with the application of a linear DRTO prediction model.
机译:动态实时优化(DRTO)是一种较高级别的在线策略,它通过对较低级别的控制器设定点轨迹进行适当的调整来利用工厂的经济潜力。在这项工作中,我们提出了双层编程问题形式的非线性DRTO计算的闭环公式。描述过程动态行为的非线性微分代数方程(DAE)系统与嵌入式约束预测控制(MPC)优化子问题结合使用,以在主要经济优化层生成近似的闭环响应动力学。通过用其Karush-Kuhn-Tucker(KKT)最优性条件代替MPC优化子问题,将双层DRTO问题重新构造为具有互补性约束(MPCC)的单级数学程序。我们在工厂模型不匹配和扰动存在的情况下,基于聚合物等级过渡案例研究了所提出策略的经济性和控制性能,并与线性DRTO预测模型进行了比较。

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