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New techniques of local damage detection in machinery based on stochastic modelling using adaptive Schur filter

机译:基于自适应Schur滤波器的随机建模的机械局部损伤检测新技术

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摘要

Vibration signal analysis is one or the most effective techniques 01 monitoring machinery and detecting local damage in their parts, e.g. bearings and gearboxes. However, such detection is sometimes difficult, especially in heavy industrial machines, because of a small proportion of damage-induced components in relation to the remaining components of registered signals. Therefore, more effective signal processing algorithms are being looked for. Moreover, local damage (cracking, pitting, spalling, breakage, etc.) in bearings and gearboxes generates broad-spectrum impulse signals, while the other type can be effectively modelled as a sum of narrowband signals. In this article, techniques based on Schur adaptive filter are proposed for local damage detection. In such an approach, the analysed signal is modelled by means of autoregressive process and the filter is described by so-called reflection coefficients. Schur algorithm is an effective algorithm with very good numerical properties and it is capable of tracking rapid changes in second order statistics of the analysed signal. Thus, the method is well-suited to analysing non-stationary signals and it is potentially interesting for use in bearing and gearbox monitoring. Reflection coefficients describing the signal model, defined with the use of Schur algorithm, may be applied in a variety of ways, giving a chance of employing different solutions in different conditions. In the first proposed solution, detection is based on the weighted sum of derivatives of reflection coefficients, while in the other one - on new signal obtained as power in frequency bands calculated from a parametric spectrogram, whose starting point are reflection coefficients. All these operations are aimed at enhancing changes that occur in the signal at the moments when damage-induced impulses appear. The article also presents guidelines for methods of determining parameter values in the employed analyses. The proposed solutions have been applied for analysing signals coming from a two-stage gearbox of a large machine driving a mining belt conveyor and the obtained results were analysed. They prove the effectiveness of the proposed techniques. It is worth emphasizing that these techniques can be easily adapted for monitoring machinery in varying operating conditions.
机译:振动信号分析是监视机械设备并检测其零件局部损坏的一种或最有效的技术,例如轴承和变速箱。然而,这种检测有时是困难的,特别是在重型工业机械中,因为相对于注册信号的其余成分,由损伤引起的成分的比例很小。因此,正在寻找更有效的信号处理算法。此外,轴承和齿轮箱中的局部损坏(裂纹,麻点,剥落,断裂等)会产生广谱脉冲信号,而另一种类型可以有效地建模为窄带信号的总和。本文提出了基于Schur自适应滤波器的局部损伤检测技术。在这种方法中,通过自回归过程对分析的信号进行建模,并通过所谓的反射系数来描述滤波器。 Schur算法是一种有效的算法,具有很好的数值属性,并且能够跟踪分析信号的二阶统计量的快速变化。因此,该方法非常适合分析非平稳信号,并且在轴承和变速箱监控中可能很有用。使用Schur算法定义的描述信号模型的反射系数可以多种方式应用,从而有机会在不同条件下采用不同的解决方案。在第一个提出的解决方案中,检测基于反射系数的导数的加权和,而在另一个解决方案中,检测是基于以参数化频谱图计算的,以反射系数为起点的频带中作为功率获得的新信号。所有这些操作都旨在增强在出现由损坏引起的脉冲时瞬间信号中发生的变化。本文还介绍了在所用分析中确定参数值的方法的准则。所提出的解决方案已被用于分析来自驱动采矿带式输送机的大型机器的两级齿轮箱的信号,并分析了获得的结果。他们证明了所提出技术的有效性。值得强调的是,这些技术可以很容易地适用于在变化的工作条件下监视机械。

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