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Structural Damage Identification with Performance-based Uncertainty Quantification and Feedback Control

机译:基于性能的不确定性量化和反馈控制的结构损伤识别

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摘要

This article presents an investigation of damage detection of a structure with significant uncertainty. The proposed approach integrates the performance-based uncertainty quantification and feedback control techniques for damage identification. A singular value decomposition (SVD) technique is used to decompose parameter variations into principal components that are weighted with the sensitivity of the performance metric for damage identification. This SVD technique can be used to differentiate between dominant uncertainties and minor uncertainties corresponding to damage identification. To improve the performance of damage identification under uncertainty, a feedback controller is incorporated into the structure to reduce the effect of the quantified uncertainty. The probability framework, based on Monte Carlo simulation, is used to predict the false identification of damage. Examples based on the structural dynamics challenge problem issued by Sandia National Laboratories are used to demonstrate the proposed techniques.
机译:本文介绍了具有重大不确定性的结构的损伤检测研究。所提出的方法集成了基于性能的不确定性量化和反馈控制技术来进行损伤识别。奇异值分解(SVD)技术用于将参数变化分解为主要成分,并使用性能指标的灵敏度进行加权,以进行损伤识别。此SVD技术可用于区分主要不确定性和与损坏识别相对应的次要不确定性。为了提高不确定性下损伤识别的性能,将反馈控制器集成到结构中以减少量化不确定性的影响。基于蒙特卡洛模拟的概率框架用于预测损害的错误识别。以桑迪亚国家实验室(Sandia National Laboratories)发行的基于结构动力学挑战问题的示例为例,论证了提出的技术。

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