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A solution for micro drill condition monitoring with vibration signals for PCB drilling

机译:用于通过PCB钻孔的振动信号监控微钻状态的解决方案

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摘要

Purpose - The objective of this study is to develop an automated tool condition monitoring scheme for PCB drilling.Design/methodology/approach - Vibration signals are used to distinguish micro drill wear stages with proper features extraction and classifierdesign. Then a tool condition monitoring system is built up through a back propagation neural network (BPNN).Findings - Experimental results show that BPNN is a practical method of modeling tool wear, and with this method a tool condition monitoring system is built up using energy ratio, root mean square (RMS) and kurtosis coefficient that transformed by vibration signals.Research limitations/implications - In the further investigation, more signal samples should be computed as monitoring features for BPNN modeling. In addition, in order to build the best monitoring model, it is necessary to evaluate the performance of the BPNN model in advance, and optimize the process.Originality/value - The paper provides a method and a system for PCB drill wear monitoring. The method and system can achieve on-line monitoring of PCB drill condition.
机译:目的-这项研究的目的是开发一种用于PCB钻孔的自动化工具状态监测方案。设计/方法/方法-振动信号用于通过适当的特征提取和分类器设计来区分微型钻头的磨损阶段。发现-实验结果表明,BPNN是一种模拟刀具磨损的实用方法,并利用能量比建立了刀具状态监测系统。 ,均方根(RMS)和经振动信号转换的峰度系数。研究局限/含意-在进一步的研究中,应计算更多的信号样本作为BPNN建模的监视功能。另外,为了建立最佳的监测模型,有必要事先评估BPNN模型的性能,并优化过程。原创性/价值-本文提供了一种监测PCB钻头磨损的方法和系统。该方法和系统可以实现对PCB钻孔状态的在线监控。

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