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Damage identification in plate-like structures using frequency-coupled l1-based sparse estimation
DOI:10.1016/j.ymssp.2024.112084.png)
摘要
En 中文
This article proposes a practical and effective damage identification approach for plate-like structures. This approach measures the back scattering caused by damage, and decomposes it into individual contributions from each defect, using the responses of the healthy structure as a dictionary. A data-driven model is used, which circumvents the challenge of numerically simulating the effect of damage, yet does not require training data from known-damaged structures. The decomposition itself is performed using sparsity-promoting optimization, which reduces the number of required measurements and streamlines the inspection procedure. A novel frequency-coupled method is proposed to obtain the desired spatial sparsity of the estimated damage, which results in improved accuracy compared to the previously proposed frequency-decoupled method. Damage identification is demonstrated on a 600 mm x 600 mm composite plate, using a single accelerometer and 7 impact hammer hits. The performance is evaluated on 6 damage scenarios, for 7 accelerometer positions, and for SNRs ranging from 30 to 0 dB. Detection and localization are shown to be excellent up to 5 defects and down to 15 dB SNR, and to remain robust and predictable outside of that range. These results are compared to reference methods and a significant improvement is observed.
Keyword:
Structural health monitoring
Non-destructive testing
Damage identification
Wave propagation
Sparsity
Inverse problems
期刊
IF:
8.9
论文数:
1.3W
被引数:
6.6W
机构
引用论文
Vibration-based model-dependent damage (delamination) identification and health monitoring for composite structures - A review复合材料结构的基于振动的模型相关损伤 (分层) 识别和健康监测-综述
A review on recent developments in vibration-based damage identification methods for laminated composite structures: 2010-2022
COMPOSITE STRUCTURES
IF7.1
A Systematic Review of Compressive Sensing: Concepts, Implementations and Applications
IEEE ACCESS
IF3.6

