Comparison of various tool wear prediction methods during end milling of metal matrix composite

Martyna Wiciak, P. Twardowski, S. Wojciechowski
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引用次数: 2

Abstract

Abstract In this paper, the problem of tool wear prediction during milling of hard-to-cut metal matrix composite Duralcan™ was presented. The conducted research involved the measurements of acceleration of vibrations during milling with constant cutting conditions, and evaluation of the flank wear. Subsequently, the analysis of vibrations in time and frequency domain, as well as the correlation of the obtained measures with the tool wear values were conducted. The validation of tool wear diagnosis in relation to selected diagnostic measures was carried out with the use of one variable and two variables regression models, as well as with the application of artificial neural networks (ANN). The comparative analysis of the obtained results enable.
金属基复合材料立铣削过程中刀具磨损预测方法的比较
针对难切削金属基复合材料Duralcan™铣削过程中刀具磨损预测问题进行了研究。所进行的研究包括测量恒定切削条件下铣削过程中的振动加速度,以及评估侧面磨损。随后,对振动进行了时域和频域分析,并将测量结果与刀具磨损值进行了相关性分析。利用单变量和双变量回归模型以及人工神经网络(ANN)的应用,对与选定诊断措施相关的刀具磨损诊断进行了验证。对得到的结果进行比较分析。
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