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Design and Analysis of Integrated Predictive Iterative Learning Control for Batch Process Based on Two-dimensional System Theory

机译:基于二维系统理论的批生产过程集成预测迭代学习控制设计与分析

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摘要

Based on the two-dimensional (2D) system theory, an integrated predictive iterative learning control (2D-IPILC) strategy for batch processes is presented. First, the output response and the error transition model predictions along the batch index can be calculated analytically due to the 2D Roesser model of the batch process. Then, an integrated framework of combining iterative learning control (ILC) and model predictive control (MPC) is formed reasonably. The output of feedforward ILC is estimated on the basis of the predefined process 2D model. By min-imizing a quadratic objective function, the feedback MPC is introduced to obtain better control performance for tracking problem of batch processes. Simulations on a typical batch reactor demonstrate that the satisfactory tracking performance as wel as faster convergence speed can be achieved than traditional proportion type (P-type) ILC despite the model error and disturbances.
机译:基于二维(2D)系统理论,提出了一种用于批处理的集成预测迭代学习控制(2D-IPILC)策略。首先,由于批处理的二维Roesser模型,可以分析计算沿批处理索引的输出响应和错误过渡模型预测。然后,合理地形成了将迭代学习控制(ILC)和模型预测控制(MPC)相结合的集成框架。前馈ILC的输出是根据预定义的过程2D模型估算的。通过最小化二次目标函数,引入了反馈MPC,以获得更好的控制性能来跟踪批处理过程。在典型的间歇式反应器上进行的仿真表明,尽管存在模型误差和干扰,但与传统的比例式(P型)ILC相比,可以实现令人满意的跟踪性能以及更快的收敛速度。

著录项

  • 来源
    《中国化学工程学报(英文版)》 |2014年第7期|762-768|共7页
  • 作者单位

    Department of Automation, Tsinghua University, Beijing 100084, China;

    Department of Automation, Tsinghua University, Beijing 100084, China;

    Department of Automation, Tsinghua University, Beijing 100084, China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-19 03:47:52
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