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Vibration Sensor Monitoring of Nickel-Titanium Alloy Turning for Machinability Evaluation

机译:镍钛合金车削振动传感器监控以评估可加工性

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摘要

Nickel-Titanium (Ni-Ti) alloys are very difficult-to-machine materials causing notable manufacturing problems due to their unique mechanical properties, including superelasticity, high ductility, and severe strain-hardening. In this framework, the aim of this paper is to assess the machinability of Ni-Ti alloys with reference to turning processes in order to realize a reliable and robust in-process identification of machinability conditions. An on-line sensor monitoring procedure based on the acquisition of vibration signals was implemented during the experimental turning tests. The detected vibration sensorial data were processed through an advanced signal processing method in time-frequency domain based on wavelet packet transform (WPT). The extracted sensorial features were used to construct WPT pattern feature vectors to send as input to suitably configured neural networks (NNs) for cognitive pattern recognition in order to evaluate the correlation between input sensorial information and output machinability conditions.
机译:镍钛(Ni-Ti)合金是极难加工的材料,由于其独特的机械性能(包括超弹性,高延展性和严重的应变硬化)而引起明显的制造问题。在此框架下,本文的目的是参考车削工艺来评估Ni-Ti合金的可加工性,以实现对加工性条件的可靠而可靠的过程中识别。在实验性转向测试期间,基于振动信号的采集进行了在线传感器监控程序。基于小波包变换(WPT),通过时频域中的高级信号处理方法对检测到的振动感觉数据进行处理。提取的感觉特征用于构造WPT模式特征向量,以作为输入发送到适当配置的神经网络(NN),以进行认知模式识别,从而评估输入感觉信息与输出可加工性条件之间的相关性。

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