实现物联网智能制造的智能风险管理模型

Joseph S. M. Yuen, K. Choy, H. Y. Lam, Y. Tsang
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引用次数: 1

摘要

为了适应不断变化的环境,物联网(IoT)已经出现,以支持制造工厂更好地管理产品质量。由于物联网在制造业中的应用相对较新,因此如何管理规划和实施过程以实现智能制造越来越受到关注。然而,由于不同的规格,例如产品类型、产品性质、工厂布局、生产流程、机器和设备设置,每个制造工厂的物联网应用都有所不同。因此,必须进行风险分析,以确保在实施过程之前考虑到任何可能的情况和不确定性。风险管理起着重要的作用,因为中断会造成重大的财务和声誉损失,特别是对环境敏感的电子产品。在本研究中,设计了一个电子制造风险管理模型(EM-RMM)来评估制造工厂在物联网应用中面临的风险。通过识别制造工厂在物联网应用中面临的风险,利用模糊层次分析法(FAHP)计算风险的权重,分析风险的可能性和后果。通过对一家生产环境敏感型电子产品的工厂的案例研究,研究结果为物联网实施中的风险评估提供了一个系统的程序,目的是实现智能制造。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Intelligent Risk Management Model for Achieving Smart Manufacturing on Internet of Things
To adapt to the ever-changing environment, Internet of Things (IoT) has emerged for supporting manufacturing plants to better manage the quality of products. Since the application of IoT is relatively new to the manufacturing industry, increasing attention has been paid on how to manage the planning and implementation process so as to achieve smart manufacturing. However, IoT applications in each manufacturing plant are varied due to different specifications, such as the product types, product nature, plant layout, production flow, machine and equipment settings. Hence, it is essential to perform risk analysis to ensure that any possible situation and uncertainty is being considered before the implementation process. Risk management plays an important role since disruption can cause significant financial and reputational loss, especially for electronics products, which are environmental-sensitive. In this study, an electronic manufacturing risk management model (EM-RMM) is designed to assess the risk faced by manufacturing plants for IoT applications. By identifying the risks faced by manufacturing plants for IoT applications, the likelihood and consequences of the risks are analyzed by using fuzzy analytical hierarchy process (FAHP) to calculate the weighting of the risks. Through a case study in a plant which manufactures environmental-sensitive electronics products, the results provide a systematic procedure for risk assessment in IoT implementation, with the aim of achieving smart manufacturing.
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