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A novel physics-based temperature compensation model for structural health monitoring using ultrasonic guided waves

机译:基于物理学的新型基于温度的温度补偿模型,用于使用超声波导波的结构健康监测

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This article investigates the role of ambient temperature in causing changes to the structural wave propagation, as sensed by piezoelectric transducers, in a newer perspective. A novel approach is proposed to compensate the influence of temperature on piezo-sensor response using both analytical models and numerical simulations. Parametric studies using numerical simulations for plates with surface-mounted piezoelectric transducers establish linear functional relationship between change in sensor signals and specific combination of material properties, within certain temperature range. A numerical temperature compensation model is developed based on this functional relationship to reconstruct piezo-sensor signals at elevated temperatures. Matching pursuit-based signal analysis and reconstruction schemes are used in this study. Practical efficacy of the compensation model is tested for metallic structures with both simple and complex geometries. Model-based reconstruction of first wave packets in the sensor signals is found to match quite well with the experimental measurements. Performance of the proposed compensation model is also found to be at par with the existing state-of-art temperature compensation methods. A very limited set of baseline sensor data is required to estimate unknown model parameters, making this approach to be efficient and practically useful. The output of the compensation model is also used to obtain an accurate estimate of damage location in a structure under varying ambient temperature environments.
机译:本文以较新的视角研究了环境温度在引起结构波传播变化(如压电换能器检测到)中的作用。提出了一种使用分析模型和数值模拟来补偿温度对压电传感器响应影响的新颖方法。使用数值模拟对带有表面安装式压电换能器的板进行的参数研究在一定温度范围内建立了传感器信号变化与材料特性的特定组合之间的线性函数关系。基于此功能关系开发了数值温度补偿模型,以在高温下重建压电传感器信号。在这项研究中使用基于匹配追踪的信号分析和重建方案。对具有简单和复杂几何形状的金属结构测试了补偿模型的实际功效。发现传感器信号中第一波包的基于模型的重建与实验测量非常匹配。还发现建议的补偿模型的性能与现有的最新温度补偿方法相当。需要一组非常有限的基线传感器数据来估计未知的模型参数,从而使此方法高效且实用。补偿模型的输出还用于获得在变化的环境温度环境下结构中损坏位置的准确估计。

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