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Numerical and ultrasonic experimental simulations of elastic wave propagation around hollow cylinder

机译:弹性波在中空圆柱体周围传播的数值和超声实验模拟

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摘要

A laser-ultrasonic experimental setup was used to study, at a reduced scale, the wave propagation inside and around fluid-filled wells. Simulations tools were also developed and calibrated from comparisons with experimental signals. These tools serve as a connection to realistic scale. A semi-analytical approach, the discrete wave number method was first used to compute signals in a simplified geometrical configuration. This method is fast enough to be used in the identification of the main parameters that describe at best the experimental signals. Then a finite difference scheme was implemented in order to describe accurately the actual well. The two methods describe the attenuation mechanisms by using the KelvinVoigt model for the solid and the Maxwell model for the fluid. Comparisons between numerical and experimental waveforms, obtained in the two fundamental elastic configurations: the fast and the slow formations, show very good agreement in arrival times, waveforms and relative amplitudes. This satisfactory result provides insights useful for the recognition and interpretation of wave propagation in complex media. Such is the case of modern sonic-logging technology.
机译:使用激光-超声波实验装置以缩小的比例研究流体填充井内部和周围的波传播。还开发了仿真工具,并通过与实验信号的比较进行了校准。这些工具可与实际规模联系起来。作为一种半分析方法,离散波数方法首先用于简化几何配置的信号计算。该方法足够快,可用于识别最多描述实验信号的主要参数。然后实施有限差分方案以准确描述实际井。两种方法通过将KelvinVoigt模型用于固体和将Maxwell模型用于液体来描述衰减机理。在两种基本弹性构型(快速和慢速地层)中获得的数值波形和实验波形之间的比较显示出到达时间,波形和相对振幅之间的一致性非常好。这一令人满意的结果为了解和解释复杂介质中的波传播提供了有用的见解。现代声波测井技术就是这种情况。

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