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Quantification of tool chatter and metal removal rate using wavelet denoising and statistical approach

机译:用小波去噪和统计方法量化工具颤振和金属去除率

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摘要

Tool chatter is an unavoidable phenomenon encountered in machining processes. Acquired raw chatter signals are contaminated with various types of ambient noises. Signal processing is an efficient technique to explore chatter as it eliminates unwanted background noise present in the raw signal. In this study, experimentally recorded raw chatter signals have been denoised using wavelet transform in order to eliminate the unwanted noise inclusions. Moreover, effect of machining parameters such as depth of cut ( d ), feed rate ( f ) and spindle speed ( N ) on chatter severity and metal removal rate has been ascertained experimentally. Furthermore, in order to quantify the chatter severity, a new parameter called chatter index has been evaluated considering aforesaid denoised signals. A set of 15 experimental runs have been performed using Box–Behnken design of experiment. These experimental observations have been used to develop mathematical models for chatter index and metal removal rate considering response surface methodology. In order to check the statistical significance of control parameters, analysis of variance has been performed. Furthermore, more experiments are conducted and these results are compared with the theoretical ones in order to validate the developed response surface methodology model.
机译:工具喋喋不休是加工过程中遇到的不可避免的现象。获得的原始颤壳信号被各种类型的环境噪声污染。信号处理是一种有效的技术来探索喋喋不休,因为它消除了原始信号中存在的不需要的背景噪声。在本研究中,通过小波变换进行了实验记录的原始颤振信号,以消除不需要的噪声夹杂物。此外,已经通过实验确定了加工参数,例如切割深度(d),进料速率(f)和主轴速度(n)的加工参数和主轴速度(n)。此外,为了量化抖动严重程度,考虑到上述去噪信号,已经评估了一种名为Chatter索引的新参数。使用Box-Behnken设计进行了一组15个实验运行。考虑到响应面方法,这些实验观察用于开发用于颤振率和金属去除率的数学模型。为了检查控制参数的统计显着性,已经进行了方差分析。此外,进行更多实验,并将这些结果与理论上的比较,以验证发育的响应面方法模型。

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