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Random-vibration-based damage detection and precise localization on a lab-scale aircraft stabilizer structure via the Generalized Functional Model Based Method

机译:通过基于通用功能模型的方法,基于随机振动的损伤检测和实验室规模的飞机稳定器结构的精确定位

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摘要

The problem of random-vibration-based damage diagnosis, including detection and localization, for a lab-scale aircraft stabilizer structure is addressed. Diagnosis is based on the recently introduced Generalized Functional Model Based Method, which utilizes a simple data-based model - instead of large-scale finite element type models - in the inspection phase and is capable of estimating the damage coordinates and their uncertainty region. The focus of the work is on assessing the achievable detection performance and localization accuracy under constraints on the number of deployed sensors and the excitation bandwidth, both reflecting practical limitations relating to potential in-flight implementation. The damage scenarios simulate local stiffness reduction via the addition of a small mass at any point on the structure. While the method has been recently employed with structures consisting of one-dimensional elements, it is presently and for the first time challenged with the considerably more complex problem of damage localization on a two-dimensional structural element. The method's details, including the transformation of functional boundary constraints into simple ones within the context of the associated optimization problem, are illustrated. The results obtained with a large number of experiments, using only two vibration sensors and limited, low-frequency signal bandwidth, demonstrate excellent damage detection and remarkably accurate localization, thus indicating the method's high potential for effective damage diagnosis.
机译:解决了实验室规模的飞机稳定器结构基于随机振动的损伤诊断问题,包括检测和定位。诊断基于最近引入的基于通用功能模型的方法,该方法在检查阶段使用简单的基于数据的模型(而不是大型有限元类型模型),并且能够估计损坏坐标及其不确定性区域。这项工作的重点是在部署传感器的数量和激励带宽的限制下评估可实现的检测性能和定位精度,这两者都反映了与潜在飞行中实施相关的实际限制。损坏方案通过在结构上的任意点添加较小的质量来模拟局部刚度降低。尽管该方法近来已用于由一维元素组成的结构,但是目前并首次受到二维结构元素上损伤定位的相当复杂的问题的挑战。说明了该方法的详细信息,包括在相关联的优化问题的上下文中将功能边界约束转换为简单边界约束。仅使用两个振动传感器和有限的低频信号带宽,通过大量实验获得的结果证明了出色的损伤检测能力和非常精确的定位能力,从而表明该方法具有进行有效损伤诊断的巨大潜力。

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