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A damage diagnostic imaging algorithm based on the quantitative comparison of Lamb wave signals

机译:基于兰姆波信号定量比较的损伤诊断成像算法

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摘要

With the objective of improving the temperature stability of the quantitative comparison of Lamb wave signals captured in different states, a damage diagnostic imaging algorithm integrated with Shannon-entropy-based interrogation was proposed. It was evaluated experimentally by identifying surface damage in a stiffener-reinforced CF/EP quasi-isotropic woven laminate. The variations in Shannon entropy of the reference (without damage) and present (with damage) signals from individual sensing paths were calibrated as damage signatures and utilized to estimate the probability of the presence of damage in the monitoring area enclosed by an active sensor network. The effects of temperature change on calibration of the damage signatures and estimation of the probability values for the presence of damage were investigated using a set of desynchronized signals. The results demonstrate that the Shannon-entropy-based damage diagnostic imaging algorithm with improved robustness in the presence of temperature change has the capability of providing accurate identification of damage in actual environments.
机译:为了提高不同状态下捕获的兰姆波信号定量比较的温度稳定性,提出了一种结合基于香农熵的询问的损伤诊断成像算法。通过鉴定加强筋增强的CF / EP准各向同性编织层压板的表面损伤,通过实验对它进行了评估。将参考信号(无损坏)和来自各个传感路径的当前信号(有损坏)的香农熵的变化作为损坏特征进行校准,并用于估计由主动传感器网络包围的监视区域中出现损坏的可能性。使用一组不同步的信号,研究了温度变化对损坏特征的校准和损坏存在概率值估计的影响。结果表明,基于香农熵的损伤诊断成像算法在存在温度变化的情况下具有更高的鲁棒性,能够准确识别实际环境中的损伤。

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