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Acoustic emission monitoring in high-speed micro end-milling based on SVD-EEMD method

机译:基于SVD-EEMD方法的高速微型立铣刀声发射监测

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In monitoring high-speed micro-milling, acoustic emission is used to explore the relationship between the machining parameters and the acoustic emission signal under different processing parameters. The acquired acoustic emission signal is denoised by singular value decomposition based on Hankel matrix, and the characteristic values of the denoising signal is calculated by ensemble empirical mode decomposition and the Hilbert-Huang transform. Results show that the characteristic values of the acoustic emission signal can represent the change in machining parameters, such as the spindle speed, and the acoustic emission signal is suitable for monitoring the micro-milling process.
机译:在监控高速微铣削过程中,使用声发射来探索不同加工参数下加工参数与声发射信号之间的关系。通过基于汉克尔矩阵的奇异值分解对获取的声发射信号进行去噪,并通过整体经验模态分解和希尔伯特-黄变换来计算去噪信号的特征值。结果表明,声发射信号的特征值可以代表加工参数的变化,例如主轴转速,并且该声发射信号适合于监测微铣削过程。

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