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Automated Impedance-based Structural Health Monitoring Incorporating Effective Frequency Shift For Compensating Temperature Effects

机译:基于阻抗的自动结构健康监测,结合有效的频移以补偿温度影响

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This study presents an impedance-based structural health monitoring (SHM) technique considering temperature effects. The temperature variation results in significant impedance variations, particularly a frequency shift in the impedance, which may lead to erroneous diagnostic results of real structures, such as civil, mechanical, and aerospace structures. In order to minimize the effect of the temperature variation on the impedance measurements, a previously proposed temperature compensation technique based on the cross-correlation between the reference-impedance data and a concurrent impedance data is revisited. In this study, cross-correlation coefficient (CC) after an effective frequency shift (EFS), which is defined as the frequency shift causing two impedance data to have the maximum correlation, is utilized. To promote a practical use of the proposed SHM strategy, an automated continuous monitoring framework using MATLAB~R is developed and incorporated with the current hardware system. Validation of the proposed technique is carried out on a lab-sized steel truss bridge member under a temperature varying environment. It has been found that the CC values have shown significant fluctuations due to the temperature variation, even after applying the EFS method. Therefore, an outlier analysis providing the optimal decision limits under the inevitable variations has been carried out for more systematic damage detection. It has been found that the threshold level shall be properly selected considering the daily temperature range and the minimum target damage level for detection. It has been demonstrated that the proposed strategy combining the EFS and the outlier analysis can be effectively used in the automated continuous SHM of critical structural members under temperature variations.
机译:这项研究提出了一种考虑温度影响的基于阻抗的结构健康监测(SHM)技术。温度变化会导致明显的阻抗变化,尤其是阻抗的频移,这可能导致对真实结构(例如民用,机械和航空结构)的错误诊断结果。为了最小化温度变化对阻抗测量的影响,重新考虑了先前提出的基于参考阻抗数据与并发阻抗数据之间的互相关的温度补偿技术。在这项研究中,利用了有效频移(EFS)之后的互相关系数(CC),其定义为导致两个阻抗数据具有最大相关性的频移。为了促进所建议的SHM策略的实际使用,开发了使用MATLAB〜R的自动连续监视框架,并将其与当前的硬件系统结合在一起。所提出技术的验证是在温度变化的环境下在实验室大小的钢桁架桥构件上进行的。已经发现,即使在采用EFS方法之后,由于温度变化,CC值仍显示出明显的波动。因此,已经进行了在不可避免的变化下提供最佳决策极限的离群分析,以进行更系统的损伤检测。已经发现,应考虑日常温度范围和检测的最小目标损伤水平来适当选择阈值水平。已经证明,结合EFS和离群值分析的建议策略可以有效地用于温度变化下关键结构构件的自动连续SHM。

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