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首页> 外文期刊>Journal of Sound and Vibration >A robust singular value decomposition for damage detection under changing operating conditions and structural uncertainties
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A robust singular value decomposition for damage detection under changing operating conditions and structural uncertainties

机译:鲁棒的奇异值分解,用于在变化的运行条件和结构不确定性下进行损伤检测

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A technique is proposed to detect damage in structures from measurements taken under different conditions (i.e. different operational excitation levels, geometrical uncertainties and surface treatments of the structure). The method is based on a robust singular value decomposition (RSVD) which will be introduced in this article. Using the RSVD the distance of an observation to the subspace spanned by the intact measurements can be computed. Furthermore, from statistics, a threshold can be determined to automatically decide, based on the observation's distance to the subspace, if the observation comes from a damaged or intact sample. The proposed RSVD method is compared with an existing method based on the classical least-squares (LS) SVD. The damage detection method is validated on an aluminium beam with different damage scenarios (a saw cut and a fatigue crack), under several conditions (different beams with small dimensional changes, beams covered with damping material and different operating levels). (c) 2004 Elsevier Ltd. All rights reserved.
机译:提出了一种通过在不同条件下(即不同的工作激发水平,几何不确定性和结构的表面处理)进行的测量来检测结构损坏的技术。该方法基于鲁棒的奇异值分解(RSVD),将在本文中介绍。使用RSVD,可以计算观测值到完整测量所跨越的子空间的距离。此外,根据统计信息,可以确定阈值以根据观察值到子空间的距离自动确定观察值是否来自损坏或完整的样本。将提出的RSVD方法与基于经典最小二乘(LS)SVD的现有方法进行比较。在几种情况下(具有较小尺寸变化的不同梁,覆盖有阻尼材料的梁和不同的工作水平),在具有不同损伤场景(锯切和疲劳裂纹)的铝梁上验证损伤检测方法。 (c)2004 Elsevier Ltd.保留所有权利。

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