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Servo axis incipient degradation assessment of CNC machine tools using the built-in encoder

机译:使用内置编码器的CNC机床伺服轴初期劣化评估

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摘要

Servo axis system has been widely applied in the high-precision CNC machine tools. Its performance degradation may lead to the degradation of whole machine and ultimately result to the accuracy degradation of parts manufacturing. Thus, health assessment of the servo axis is very essential, especially for those in-service CNC machine tools. However, restricted by the complexity of servo axis structure, weak signal of incipient degradation, and limited sensors' installation space, traditional degradation evaluation methods, such as the vibration based scheme, are very difficult to be applied in real service environment directly. In this paper, a new methodology is established for servo axis incipient degradation assessment by reusing the position fluctuation information captured by built-in encoder. Firstly, to highlight the torsional behavior of the servo axis components, the instantaneous angular acceleration (IAA) is estimated by using the position fluctuation information with frequency domain weighting (FDW) method. After that, the wavelet packet transform (WPT) is employed for decomposition of these nonstationary IAA signals. Finally, a Gini index (GI)-guided denoising scheme is established for incipient degradation feature reconstruction. The effectiveness of the proposed method is investigated by simulations; thereafter, it is applied for the X-axis assessment of an in-service high-precision vertical machining center. All the results illustrate that the proposed method is sensitive to incipient degradation of the rotating components and offers an alternative solution for health assessment of servo axis.
机译:伺服轴系统已广泛应用于高精度CNC机床。其性能下降可能导致整机的降解,最终导致零件制造的准确性降解。因此,伺服轴的健康评估是非常重要的,特别是对于那些在线的CNC机床。然而,受伺服轴结构的复杂性的限制,初期劣化的弱信号和有限的传感器安装空间,传统的降解评估方法,例如基于振动的方案,非常难以直接应用于实际服务环境中的实际服务环境。在本文中,通过重用由内置编码器捕获的位置波动信息来建立一种新方法,用于伺服轴初期劣化评估。首先,为了突出伺服轴分量的扭转行为,通过使用频域加权(FDW)方法的位置波动信息来估计瞬时角速度(IAA)。之后,采用小波分组变换(WPT)用于分解这些非营养的IAA信号。最后,建立了GINI指令(GI) - 指导的去噪方案进行初期降解特征重建。通过模拟研究了所提出的方法的有效性;此后,它应用于在役高精度垂直加工中心的X轴评估。所有结果表明,该方法对旋转组件的初期劣化敏感,并提供了伺服轴的健康评估的替代解决方案。

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