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The application of an ANFIS and grey system method in turning tool-failure detection

机译:ANFIS和灰色系统方法在车刀故障检测中的应用

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The cutting process is a major material removal process; hence, it is important to search for ways of detecting tool failure. This paper describes the results of the application of an adaptive-network-based fuzzy inference system (ANFIS) for tool-failure detection in a single-point turning operation. In a turning operation, wear and failure of the tool are usually monitored by measuring cutting force, load current, vibration, acoustic emission (AE) and temperature. The AE signal and cutting force signal provide useful information concerning the tool-failure condition. Therefore, five input parameters of the combined signals (AE signal and cutting force signal) have been used in the ANFIS model to detect the tool state. In this model, we adopted three different types of membership function for analysis for ANFIS training and compared their differences regarding the accuracy rate of the tool-state detection. The result obtained for the successful classification of tool state with respect to only two classes (normal or failure) is very good. The results also indicate that a triangular MF and a generalised bell MF have a better rate of detection. We also applied grey relational analysis to determine the order of influence of the five cutting parameters on tool-state detection.
机译:切割过程是主要的材料去除过程。因此,寻找检测工具故障的方法很重要。本文介绍了基于自适应网络的模糊推理系统(ANFIS)在单点车削操作中进行工具故障检测的应用结果。在车削操作中,通常通过测量切削力,负载电流,振动,声发射(AE)和温度来监视工具的磨损和故障。 AE信号和切削力信号提供有关工具故障状况的有用信息。因此,在ANFIS模型中已使用组合信号的五个输入参数(AE信号和切削力信号)来检测工具状态。在此模型中,我们采用了三种不同类型的隶属度函数进行ANFIS训练分析,并比较了它们在工具状态检测准确率方面的差异。对于仅针对两个类别(正常或故障)的工具状态成功分类所获得的结果非常好。结果还表明,三角形MF和广义钟形MF具有更好的检测率。我们还应用了灰色关联分析来确定五个切削参数对刀具状态检测的影响顺序。

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