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SENSOR FUSION FOR REAL-TIME CONDITION MONITORING OF TOOL WEAR IN SURFACING WITH FLY CUTTERS

机译:叶片刀具磨损刀具磨损实时条件监测的传感器融合

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A coherent artificial neural network, ANN, software program capable of real time analysis and decision-making is utilized in this work for the automatic detection and diagnostics of tool wear during a surfacing milling operation using a fly cutter. Several sensors were utilized to collect data indirectly related to wear: current measurements from the spindle and two (x, y) drive motors, three (x, y, z) components of cutting force, and acoustic emission. Furthermore, direct wear measurements were collected using image capturing and dimensional measurements of the worn location (not performed in real-time). As the inputs from these sensors were 'fused', the ANN utilized this multiple-sensor data to yield reasonable predictions of 'good', 'used', and 'worn' tools.
机译:在使用飞行器期间,在这项工作中利用了能够实时分析和决策能够实时分析和决策的软件程序的一连贯的人工神经网络,在这种工作中使用刀具磨损的自动检测和诊断。利用几种传感器收集与磨损间接相关的数据:来自主轴的电流测量和两个(x,y)驱动电动机,三个(x,y,z)切割力和声发射的组件。此外,使用磨损位置的图像捕获和尺寸测量来收集直接磨损测量(未在实时执行)。由于这些传感器的输入被“融合”,因此使用该多个传感器数据来产生合理的预测“良好”,“使用”和“磨损”的工具。

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