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A RAYLEIGH WAVE TECHNIQUE TO MEASURE THE ACOUSTIC NONLINEARITY PARAMETER OF MATERIALS

机译:一种瑞利波技术来测量材料的声学非线性参数

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Nonlinear ultrasonic techniques have shown great potential for evaluating accumulated damage early in the fatigue life, and ultimately for predicting remaining lifetime of a structural component. The acoustic nonlinearity parameter, a direct measure of the accumulated fatigue damage, is determined from the second harmonic amplitude in finite amplitude sinusoidal ultrasonic waves transmitted through the material. An absolute determination of the acoustic nonlinear parameter is notoriously difficult for several reasons. In this paper, a new experimental technique based on Rayleigh surface waves is presented for determining the absolute acoustic nonlinearity parameter of a relatively thin material specimen. Rayleigh waves are efficiently generated in a specimen by exciting at its edge, and the surface normal velocity of the propagating Rayleigh waves is measured with a laser interferometer system. The high efficiency of the excitation method allows us to drive the transmitting piezoelectric transducer as low as 60 Vpp, and thus to avoid the inherent harmonic distortion from the transducer. The absolute acoustic nonlinearity parameter is then determined from the measured magnitudes of the fundamental and second harmonic surface normal velocities. This technique is applied to determining the acoustic nonlinearity parameters of aluminum alloys 2024 and 6061; the results are compared with those available in the literature. The present technique is especially well-suited for relatively thin components, and much simpler and efficient than the traditional longitudinal wave technique.
机译:非线性超声技术表明了评估疲劳寿命早期累积损伤的巨大潜力,最终用于预测结构部件的剩余寿命。声学非线性参数,直接测量累积疲劳损坏的直接测量,从通过材料传输的有限幅度正弦波波中的第二谐波幅度确定。由于几个原因,声学非线性参数的绝对确定是臭名昭着的。本文介绍了一种基于瑞利表面波的新实验技术,用于确定相对薄的材料样本的绝对声学非线性参数。通过在其边缘激发通过激发在样品中有效地产生瑞利波,并且通过激光干涉仪系统测量传播瑞利波的表面正常速度。激励方法的高效率允许我们将发射压电换能器驱动为低至60 VPP,从而避免换能器的固有谐波失真。然后从基本和二次谐波表面正常速度的测量大小确定绝对声学非线性参数。该技术应用于确定铝合金2024和6061的声学非线性参数;结果与文献中可用的结果进行了比较。本技术特别适用于相对薄的部件,比传统的纵波技术更简单和更有效。

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