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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Application of wavelet transform of acoustic emission and cutting force signals for tool condition monitoring in rough turning of Inconel 625
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Application of wavelet transform of acoustic emission and cutting force signals for tool condition monitoring in rough turning of Inconel 625

机译:声发射和切削力信号的小波变换在Inconel 625粗车削刀具状态监测中的应用

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摘要

Nickel-based superalloys are widely used in the aircraft industry since they are exceptionally thermal resistant, retaining their mechanical properties at temperatures of up to 700℃. On the other hand, since they are very difficult to machine, tool life is typically short and can finish abruptly. As catastrophic tool failure can destroy an expensive workpiece, automatic tool condition monitoring (TCM) has become particularly critical. This paper presents an application of the wavelet packet transform (WPT) for extracting useful TCM features from the cutting forces and acoustic emission (AE) signals during rough turning of Inconel 625. New, improved methods of signal feature (SF) relevancy evaluation were proposed based on determination and correlation coefficients. Out of several SFs calculated from bandpass signals, the most useful for TCM were automatically selected. The selected features were used for tool condition monitoring.
机译:镍基高温合金具有出色的耐热性,可在高达700℃的温度下保持其机械性能,因此在飞机行业得到了广泛的应用。另一方面,由于它们很难加工,因此刀具寿命通常很短,并且可能突然完成。由于灾难性的工具故障会破坏昂贵的工件,因此自动工具状态监控(TCM)变得尤为重要。本文介绍了小波包变换(WPT)在Inconel 625粗车削时从切削力和声发射(AE)信号中提取有用的TCM特征的应用。提出了一种新的,改进的信号特征(SF)相关性评估方法基于确定和相关系数。从带通信号计算出的几个SF中,自动选择了对TCM最有用的。所选功能用于工具状态监视。

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