Intelligent identification of manufacturing operations using in-situ energy measurement in industrial injection moulding machines

Xiang Min Chee, Cao Vinh Le, D. Zhang, Ming Luo, C. Pang
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引用次数: 7

Abstract

In energy-efficient and sustainable manufacturing systems, a good understanding of energy consumption in context of manufacturing operations is required. In this paper, we propose a generic framework for online identification of manufacturing operation states based on real-time energy data. Using Discrete Wavelet Transform (DWT) and modified universal threshold filter, time-series data is segmented by detecting stepwise changes. A two-stage Fuzzy C-Means (FCM) is then used to cluster extracted segments according to manufacturing operation states. As such, the online identification is carried out based on Euclidean distance of the incoming segments to cluster centroids. An implementation of our proposed framework on industrial injection moulding machines is presented with intensive analysis and discussion.
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工业注塑机现场能量测量制造操作的智能识别
在节能和可持续的制造系统中,需要对制造操作中的能源消耗有很好的理解。本文提出了一种基于实时能源数据的制造运行状态在线识别的通用框架。采用离散小波变换(DWT)和改进的通用阈值滤波器,通过检测时间序列数据的逐步变化对数据进行分割。然后,根据制造操作状态,使用两阶段模糊c均值(FCM)对提取的片段进行聚类。因此,基于输入段到聚类质心的欧氏距离进行在线识别。我们提出的框架在工业注塑机上的实现进行了深入的分析和讨论。
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