Operation paradigm for remanufacturing shop-floor based on digital twin

被引:0
|
作者
Liu D. [1 ]
Huang H. [1 ]
Wang B. [1 ]
Zhou T. [1 ]
Luo S. [2 ]
机构
[1] Key laboratory of Advanced Manufacturing Technology, Ministry of Education, Guizhou University, Guiyang
[2] Guiyang Putian Logistics Technology Co., Ltd., Guiyang
关键词
Automobile; Digital twin; Operation paradigm; Remanufacturing; Shop-floor architecture; Virtual remanufacturing;
D O I
10.13196/j.cims.2019.06.019
中图分类号
学科分类号
摘要
As one of the important development directions of "Made in China 2025", remanufacturing plays a huge role in resource recycle, reducing energy consumption and promoting transformation and upgrading of manufacturing. As a new technology, digital twin can fully connect and integrate the physical world and information world in real time, and can effectively promote the integration of informationization and industrialization in the shop-floor. Aiming at the uncertainties in the process of remanufacturing and the situation that information space of virtual remanufacturing and actual remanufacturing process can't be interactively integrated in real time, the digital twin was applied into the remanufacturing operation process, and the architecture for digital twin-based remanufacturing shop-floor was constructed. This architecture and it's operation paradigm were elaborated respectively, the application analyses for key technologies involved was made, and the remanufacturing operation paradigm for automobile based on digital twin in future was also explored. The application prospects for digital twin-based remanufacturing in related fields were discussed. © 2019, Editorial Department of CIMS. All right reserved.
引用
下载
收藏
页码:1515 / 1527
页数:12
相关论文
共 34 条
  • [1] Zhou J., Intelligent manufacturing-main direction of "made in China 2025, China Mechanical Engineering, 26, 17, pp. 2273-2284, (2015)
  • [2] Tao F., Cheng Y., Xu L.D., Et al., CCIoT-CMfg: Cloud computing and Internet of things-based cloud manufacturing service system, IEEE Transactions on Industrial Informatics, 10, 2, pp. 1435-1442, (2014)
  • [3] Grieves M., Digitaltwin: manufacturing excellence through virtual factory replication
  • [4] Grieves M., Vickers J., Digital twin: mitigating unpredictable, undesirable emergent behavior in complex systems, Transdisciplinary Perspectives on Complex Systems, (2017)
  • [5] Schleich B., Anwer N., Mathieu L., Et al., Shaping the digital twin for design and production engineering, CIRP Annals-Manufacturing Technology, 66, 1, pp. 141-144, (2017)
  • [6] Gartner survey reveals nearly half of organizations implementing IoT are using or plan to use digital twin initiatives in 2018
  • [7] Glaessgen E., Stargel D., The digital twin paradigm for future NASA and U.S. air force vehicles, Proceedings of the 53rd Aiaa/asme/asce/ahs/asc Structures, Structural Dynamics & Materials Conference Aiaa/asme/ahs Adaptive Structures Conference, (2012)
  • [8] Wang X.V., Wang L.H., Digital twin-based WEEE recycling, recovery and remanufacturing in the background of Industry 4.0
  • [9] Tao F., Zhang M., Cheng J., Et al., Digital twin workshop: a new paradigm for future workshop, Computer Integrated Manufacturing Systems, 23, 1, pp. 1-9, (2017)
  • [10] Tao F., Cheng Y., Cheng J., Et al., Theories and technologies for cyber-physical fusion in digital twin shop-floor, Computer Integrated Manufacturing Systems, 23, 8, pp. 1603-1611, (2017)