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Flank wear detection of cutting tool inserts in turning operation: application of nonlinear time series analysis

机译:车削过程中切削刀具刀片的侧面磨损检测:非线性时间序列分析的应用

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摘要

It has been established that turning process on a lathe exhibits low dimensional chaos. This study reports the results of nonlinear time series analysis applied to sensor signals captured real time. The purpose of this chaos analysis is to differentiate three levels of flank wears on cutting tool inserts—fresh, partially worn and fully worn—utilizing the single value index extracted from the reconstructed chaotic attractor; the correlation dimension. The analysis reveals distinguishable dynamics of cutting characterized by different values for the dimension of the attractor when different quality tool inserts are used. This dependence can be effectively utilized as one of the indicators in tool condition monitoring in a lathe. This paper presents the experimental results and shows that tool vibration signals can transmit tool wear conditions reliably.
机译:已经确定的是,车床上的车削过程表现出低尺寸的混乱。这项研究报告了应用于传感器信号实时捕获的非线性时间序列分析的结果。进行这种混沌分析的目的是利用从重建的混沌吸引子中提取的单个价值指数来区分切削刀具刀片上的三个侧面磨损水平(新鲜,部分磨损和完全磨损)。相关维度。该分析揭示了在使用不同质量的工具刀片时,切削器具有明显的切削动力学,其特征在于吸引器的尺寸具有不同的值。这种依赖性可以有效地用作车床刀具状态监控中的指标之一。本文介绍了实验结果,并表明工具振动信号可以可靠地传递工具磨损状况。

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