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Damage detection in uncertain nonlinear systems based on stochastic Volterra series

机译:基于随机Volterra系列的不确定非线性系统损伤检测

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摘要

The damage detection problem in mechanical systems, using vibration measurements, is commonly called Structural Health Monitoring (SHM). Many tools are able to detect damages by changes in the vibration pattern, mainly, when damages induce nonlinear behavior. However, a more difficult problem is to detect structural variation associated with damage, when the mechanical system has nonlinear behavior even in the reference condition. In these cases, more sophisticated methods are required to detect if the changes in the response are based on some structural variation or changes in the vibration regime, because both can generate nonlinearities. Among the many ways to solve this problem, the use of the Volterra series has several favorable points, because they are a generalization of the linear convolution, allowing the separation of linear and nonlinear contributions by input filtering through the Volterra kernels. On the other hand, the presence of uncertainties in mechanical systems, due to noise, geometric imperfections, manufacturing irregularities, environmental conditions, and others, can also change the responses, becoming more difficult the damage detection procedure. An approach based on a stochastic version of Volterra series is proposed to be used in the detection of a breathing crack in a beam vibrating in a nonlinear regime of motion, even in reference condition (without crack). The system uncertainties are simulated by the variation imposed in the linear stiffness and damping coefficient. The results show, that the nonlinear analysis done, considering the high order Volterra kernels, allows the approach to detect the crack with a small propagation and probability confidence, even in the presence of uncertainties. (C) 2018 Elsevier Ltd. All rights reserved.
机译:使用振动测量的机械系统中的损伤检测问题通常称为结构健康监测(SHM)。许多工具能够通过振动模式的变化来检测损坏,主要是损坏损伤非线性行为。然而,当机械系统即使在参考条件下,机械系统具有非线性行为时,更难以检测与损坏相关的结构变化。在这些情况下,需要更复杂的方法来检测响应中的变化是否基于一些结构变化或振动方案的变化,因为两者都可以产生非线性。在解决这个问题的许多方法中,使用Volterra系列具有若干有利点,因为它们是线性卷积的概括,允许通过通过Volterra内核的输入滤波分离线性和非线性贡献。另一方面,由于噪声,几何缺陷,制造不规则性,环境条件等,在机械系统中存在不确定性,也可以改变响应,变得更加困难损坏检测程序。提出了一种基于Volterra系列的随机版本的方法,用于检测在非线性运动的非线性方案中振动的呼吸裂缝,即使在参考条件下(没有裂缝)。通过在线性刚度和阻尼系数施加的变化来模拟系统不确定性。结果表明,考虑到高阶Volterra核的非线性分析,允许使用小的传播和概率置信度来检测裂缝,即使在存在不确定性。 (c)2018年elestvier有限公司保留所有权利。

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