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Crack identification for rotating machines based on a nonlinear approach

机译:基于非线性方法的旋转机械裂纹识别

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摘要

In a previous contribution, a crack identification methodology based on a nonlinear approach was proposed. The technique uses external applied diagnostic forces at certain frequencies attaining combinational resonances, together with a pseudo-random optimization code, known as Differential Evolution, in order to characterize the signatures of the crack in the spectral responses of the flexible rotor. The conditions under which combinational resonances appear were determined by using the method of multiple scales. In real conditions, the breathing phenomenon arises from the stress and strain distribution on the cross-sectional area of the crack. This mechanism behavior follows the static and dynamic loads acting on the rotor. Therefore, the breathing crack can be simulated according to the Mayes' model, in which the crack transition from fully opened to fully closed is described by a cosine function. However, many contributions try to represent the crack behavior by machining a small notch on the shaft instead of the fatigue process. In this paper, the open and breathing crack models are compared regarding their dynamic behavior and the efficiency of the proposed identification technique. The additional flexibility introduced by the crack is calculated by using the linear fracture mechanics theory (LFM). The open crack model is based on LFM and the breathing crack model corresponds to the Mayes' model, which combines LFM with a given breathing mechanism. For illustration purposes, a rotor composed by a horizontal flexible shaft, two rigid discs, and two self-aligning ball bearings is used to compose a finite element model of the system. Then, numerical simulation is performed to determine the dynamic behavior of the rotor. Finally, the results of the inverse problem conveyed show that the methodology is a reliable tool that is able to estimate satisfactorily the location and depth of the crack.
机译:在先前的贡献中,提出了一种基于非线性方法的裂纹识别方法。该技术使用在某些频率下施加的外部诊断力以获得组合共振,并使用伪随机优化代码(称为差分进化)来表征柔性转子频谱响应中裂纹的特征。通过使用多尺度方法确定出现组合共振的条件。在实际条件下,呼吸现象是由裂纹横截面上的应力和应变分布引起的。该机构行为遵循作用在转子上的静态和动态负载。因此,可以根据Mayes模型来模拟呼吸裂纹,其中,由余弦函数描述了从完全打开到完全闭合的裂纹过渡。但是,许多贡献试图通过在轴上加工一个小缺口而不是疲劳过程来表示裂纹行为。在本文中,比较了开放和呼吸裂纹模型的动态行为和所提出的识别技术的效率。通过使用线性断裂力学理论(LFM)计算由裂纹引入的附加柔韧性。开放裂缝模型基于LFM,呼吸裂缝模型对应于Mayes模型,该模型将LFM与给定的呼吸机制结合在一起。为了说明的目的,使用由水平柔性轴,两个刚性圆盘和两个自调心球轴承组成的转子来构成系统的有限元模型。然后,进行数值模拟以确定转子的动态行为。最后,反问题的结果表明,该方法是一种可靠的工具,能够令人满意地估计裂纹的位置和深度。

著录项

  • 来源
    《Mechanical systems and signal processing》 |2016年第15期|72-85|共14页
  • 作者单位

    LMEst - Laboratory of Mechanics and Structures, Federal University of Uberlandia, School of Mechanical Engineering, Av. Joao Naves de Avila, 2121, Uberlandia, MG 38408-196, Brazil;

    LMEst - Laboratory of Mechanics and Structures, Federal University of Uberlandia, School of Mechanical Engineering, Av. Joao Naves de Avila, 2121, Uberlandia, MG 38408-196, Brazil;

    Department of Mechanical Engineering, Politecnico di Milano, Via La Masa, 1, Milano 20156, Italy;

    LMEst - Laboratory of Mechanics and Structures, Federal University of Uberlandia, School of Mechanical Engineering, Av. Joao Naves de Avila, 2121, Uberlandia, MG 38408-196, Brazil;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Rotating machine; Crack identification; Combinational resonances; Multiple scales method;

    机译:旋转机;裂纹识别;组合共鸣;多尺度法;

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