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Digital twin-based opti-state control method for a synchronized production operation system

机译:基于数字双胞胎的同步生产操作系统最优状态控制方法

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摘要

The intelligent manufacturing strategy and customer demand have mutually promoted each other. Also, the production mode is shifting towards customized production, and more rental resources or services are introduced to the production system, therefore, the systems are becoming more complex. Compared with traditional production systems, such systems have some new features, this work calls this type of system as a synchronized production operation system (SPOS). Under such circumstances, production systems are influenced by more frequent uncertainties, and the planning-based production decision and control approach is no longer applicable. The opti-state control (OsC) method is proposed to help SPOS keep in an optimal state when uncertainties affect the system. Besides, a digital twin-based control framework (DTCF) is designed for getting the full element information needed for decision making. Based on the comprehensive information of the production system obtained by the DTCF, the OsC method is introduced to the virtual control layer to formulate the optimal target guiding the path of the system in real time through the dynamic matching mechanism (qualitative perspective). Then multi-stage synchronized control with analysis target cascading (ATC) method is used to get the local optimal state decisions (quantitative perspective). From both qualitative and quantitative aspects to ensure the system is under an optimal target path for optimal operation procedure. At last, a case study in a large-size paint making company in China is used to validate the effectiveness of the approach.
机译:智能制造策略与客户需求相互促进。而且,生产模式正在向定制生产转变,并且更多的租赁资源或服务被引入到生产系统中,因此,系统变得越来越复杂。与传统生产系统相比,此类系统具有一些新功能,这项工作将这种类型的系统称为同步生产操作系统(SPOS)。在这种情况下,生产系统会受到更加频繁的不确定性的影响,基于计划的生产决策和控制方法将不再适用。提出了一种最优状态控制(OsC)方法,以在不确定性影响系统时帮助SPOS保持最佳状态。此外,设计了基于数字孪生的控制框架(DTCF),以获取决策所需的全部要素信息。基于DTCF获得的生产系统的综合信息,将OsC方法引入虚拟控制层,以通过动态匹配机制(定性的观点)实时制定指导系统路径的最佳目标。然后,采用分析目标级联(ATC)方法进行多阶段同步控制,以获取局部最优状态决策(定量观点)。从定性和定量两个方面,确保系统处于最佳操作程序的最佳目标路径下。最后,以中国一家大型涂料制造公司为例,验证了该方法的有效性。

著录项

  • 来源
    《Robotics and Computer-Integrated Manufacturing》 |2020年第6期|101892.1-101892.15|共15页
  • 作者

  • 作者单位

    School of Management Jinan University Guangzhou 510632 China Institute of Physical Internet Jinan University (Zhuhai Campus) Zhuhai 519070 China;

    School of Intelligent Systems Science and Engineering Jinan University (Zhuhai Campus) Zhuhai 519070 China Institute of Physical Internet Jinan University (Zhuhai Campus) Zhuhai 519070 China;

    Guangdong CIMS Provincial Key Lab Guangdong University of Technology Guangzhou 510006 China;

    College of Mechanical Engineering Xi'an University of Science and Technology Xi'an 710000 China Institute of Physical Internet Jinan University (Zhuhai Campus) Zhuhai 519070 China;

    Institute of Physical Internet Jinan University (Zhuhai Campus) Zhuhai 519070 China;

    Institute of Physical Internet Jinan University (Zhuhai Campus) Zhuhai 519070 China Department of Management and Engineering Linköping University SE-581 83 Linköping Sweden;

    Institute of Physical Internet Jinan University (Zhuhai Campus) Zhuhai 519070 China Department of Industrial and Manufacturing Systems Engineering The University of Hong Kong Hong Kong China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optimal State; Digital Twin; Resilient Control; Synchronized Control; Uncertainties;

    机译:最佳状态数字孪生;弹性控制;同步控制;不确定性;

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