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ACOUSTOELASTIC-BASED STRESS MEASUREMENT UTILIZING LOW-FREQUENCY FLEXURAL WAVES

机译:利用低频弯曲波的基于声弹性的应力测量

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Current acoustoelastic-based stress measurement techniques operate at the high-frequency, weakly-dispersive portions of the dispersion curves. The weak dispersive effects at such high frequencies allow the utilization of time-of-flight measurements to quantify the effects of stress on wave speed. However, this comes at the cost of lower sensitivity to the state-of-stress of the structure, and hence calibration at a known stress state is required to compensate for material and geometric uncertainties in the structure under test. In this work, the strongly-dispersive, highly stress-sensitive, low-frequency flexural waves are utilized for stress measurement in structural components. A new model-based technique is developed for this purpose, where the acoustoelastic theory is integrated into a numerical optimization algorithm to analyze dispersive waves propagating along the structure under test. The developed technique is found to be robust against material and geometric uncertainties. In the absence of calibration experiments, the robustness of this technique is inversely proportional to the excitation frequency. The capabilities of the developed technique are experimentally demonstrated on a long rectangular beam, where reference-free, un-calibrated stress measurements are successfully conducted.
机译:当前基于声弹性的应力测量技术在色散曲线的高频,弱色散部分运行。在如此高的频率下,较弱的色散效应使得可以利用飞行时间测量来量化应力对波速的影响。但是,这是以对结构的应力状态较低的敏感性为代价的,因此需要在已知应力状态下进行校准以补偿被测结构中的材料和几何不确定性。在这项工作中,将高度分散,高度应力敏感的低频弯曲波用于结构部件的应力测量。为此目的,开发了一种基于模型的新技术,其中将声弹理论整合到数值优化算法中,以分析沿着被测结构传播的色散波。发现所开发的技术对材料和几何不确定性具有鲁棒性。在没有校准实验的情况下,该技术的鲁棒性与激励频率成反比。在长矩形光束上通过实验证明了该开发技术的功能,在该平台上成功进行了无参考,未经校准的应力测量。

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