基于SOM监督神经网络的数控铣床刀具状态无传感器智能分类器

G. Mota-Valtierra, L. Franco-Gasca, G. H. Ruiz
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引用次数: 0

摘要

工业有监控系统来确定刀具状况并确保质量。介绍了一种数控铣床刀具状态智能分类系统。通过分析主轴电机电流产生的切削力来检测刀具状态。为了压缩数据并优化分类器结构,采用了小波变换。然后由一个监督SOM神经网络负责对信号进行分类。该系统的可靠性达到95%,能够检测破损和磨损的刀具。
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Sensorless intelligent classifier of tool condition in a CNC milling machine using a SOM supervised neural network
Industry has monitoring systems to determine the tool condition and to ensure quality. This paper presents an intelligent classification system which determines the status of cutters in a CNC milling machine. The tool states are detected through the analysis of the cutting forces drawn from the spindle motors currents. A wavelet transformation was used in order to compress the data and to optimise the classifier structure. Then a supervised SOM neural network is responsible for carrying out the classification of the signal. Achieving a reliability of 95%, the system is capable of detecting breakage and a worn cutter.
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