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Monitoring end-mill wear and predicting tool failure using accelerometers.

机译:使用加速度计监控立铣刀的磨损并预测工具故障。

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摘要

Autoregressive models are fit to end-milling force and acceleration data. The machining modes are isolated and monitored for changes in energy attributed to the tool as it wears and approaches failure. The modal energies corresponding to these machining frequencies are shown to be closely linked to the condition of the tool.;Life tests are conducted using both a force dynamometer and an accelerometer to allow comparisons between the abilities of the two sensors. The acceleration signals are shown to provide more stable trends, therefore, only acceleration signals are investigated in detail. A monitoring scheme is developed that tracks the end-mill's wear and provides an early warning of failure. Six acceleration life tests are used to demonstrate the capabilities of the developed detection scheme under: standard conditions, extreme conditions, premature failure and different accelerometer locations. In all six cases, the scheme was able to provide a warning of impending failure several inches before the failure occurred.;However, the monitoring technique developed using univariate models is dependent on the cutting direction. In an attempt to develop a detection scheme that can overcome this imposition, multivariate models are fit to the data. By comparing the resulting trends, the multivariate models are shown to provide trends that have lower variability than when using univariate models.;Furthermore, using the parameters of the multivariate models, a monitoring technique is developed that is unaffected by changes in the cutting direction and provides an earlier warning of approaching failure than was possible with the univariate models. One additional advantage, the scheme is also independent of the accelerometers orientation. As long as the accelerometer is attached firmly to the spindle, the technique will be able to track the condition of the tool, regardless of the actual orientation of the accelerometer. Moreover, since the scheme is linked to the wear curve, the monitoring criterion can be incorporated on other systems where wear is the primary form of failure. Therefore, the technique has the ability to work on a wide variety of rotating equipment types.
机译:自回归模型适合端铣削力和加速度数据。隔离加工模式,并监控由于刀具磨损和接近故障而引起的能量变化。显示出与这些加工频率相对应的模态能量与工具的状态紧密相关。寿命测试是使用测力计和加速计进行的,以比较两个传感器的能力。显示的加速度信号提供了更稳定的趋势,因此,仅详细研究加速度信号。开发了一种监控方案,可跟踪立铣刀的磨损并提供故障预警。六项加速寿命测试用于证明开发的检测方案在以下条件下的功能:标准条件,极端条件,过早失效和不同的加速度计位置。在所有六种情况下,该方案都能够在发生故障之前几英寸处发出即将发生故障的警告。但是,使用单变量模型开发的监视技术取决于切割方向。为了尝试开发一种可以克服这种情况的检测方案,将多变量模型拟合到数据中。通过比较结果趋势,显示多变量模型提供的趋势比使用单变量模型时具有更低的可变性;此外,通过使用多变量模型的参数,开发了不受切割方向变化影响的监控技术。提供比单变量模型更早的接近失败警告。另一个优点是,该方案也独立于加速度计的方向。只要将加速度计牢固地连接到主轴上,该技术就能够跟踪工具的状况,而与加速度计的实际方向无关。而且,由于该方案与磨损曲线相关联,因此可以将监视标准纳入以磨损为主要故障形式的其他系统。因此,该技术具有在多种旋转设备类型上工作的能力。

著录项

  • 作者

    Roth, John Timothy.;

  • 作者单位

    Michigan Technological University.;

  • 授予单位 Michigan Technological University.;
  • 学科 Applied Mechanics.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 201 p.
  • 总页数 201
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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