首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >An approach based on singular spectrum analysis and the Mahalanobis distance for tool breakage detection
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An approach based on singular spectrum analysis and the Mahalanobis distance for tool breakage detection

机译:基于奇异谱分析和马氏距离的刀具破损检测方法

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摘要

The failure of cutting tools significantly decreases machining productivity and product quality; thus, tool condition monitoring is significant in modern manufacturing processes. A new method that is based on singular spectrum analysis and Mahalanobis distance are combined to extract the crucial characteristics from spindle motor current to monitor the tool's condition. The singular spectrum analysis is a novel nonparametric technique for extracting the properties of nonlinear and nonstationary signals. However, because the components are not completely independent, the original singular spectrum analysis eventually leads to misinterpretation of the final results. The proposed method is used to overcome the weakness of the original singular spectrum analysis. The singular spectrum analysis algorithm is adopted to decompose the original signal and the useful singular values that correspond to the tool condition can be extracted. The Mahalanobis distance of the singular values is proposed as a feature that can effectively express the tool condition. The experiments on a CNC Vertical Machining Center demonstrate that this method is effective and can accurately detect the tool breakage in mill process.
机译:切削工具的故障会大大降低加工生产率和产品质量;因此,工具状态监视在现代制造过程中非常重要。一种基于奇异频谱分析和马氏距离的新方法相结合,从主轴电机电流中提取关键特性,以监控工具的状态。奇异频谱分析是一种新颖的非参数技术,用于提取非线性和非平稳信号的特性。但是,由于成分不是完全独立的,因此原始的奇异频谱分析最终会导致对最终结果的错误解释。所提出的方法用于克服原始奇异谱分析的缺点。采用奇异频谱分析算法对原始信号进行分解,提取出与刀具状态相对应的有用奇异值。提出了奇异值的Mahalanobis距离作为可以有效表达工具状态的特征。在CNC立式加工中心上进行的实验表明,该方法是有效的,并且可以精确地检测铣削过程中的刀具破损。

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