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Detection of material nonlinearity using nonlinear ultrasonic three-wave mixing technique

机译:非线性超声三波混合技术检测材料非线性

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This paper proposes a new nonlinear ultrasonic technique based on three-wave mixing to generate and measure third-order combined harmonics (TOCH) for detecting material nonlinearity in plate-like structures. This technique introduces three input ultrasonic waves with distinct frequencies to a nonlinear structure (e.g., Lattice-anharmonicity). The mutual interaction of these waves generates TOCH at mixing frequencies of input frequency components. The amplitudes of the generated TOCH and the input frequency components are used to estimate the cubic nonlinearity parameter and thereby based on it the associated the material nonlinearity. Here, the cubic nonlinearity parameter is defined as the third- and fourth-order elastic constants of the material. A theoretical model to predict the TOCH due to the mutual interaction of input waves in a nonlinear structure is developed. Further, the experimentally evaluated material nonlinearity of the aluminum specimen is compared with the material nonlinearity estimated by the theoretical model. When the phase matching and non-zero power flux conditions are satisfied, the amplitude of the third-order harmonics was observed to increases steeply with the propagation distance. Because material nonlinearity alters the third- and fourth-order elastic constants of the material, the proposed technique for measuring the TOCH can be used to identify the material nonlinearity more effectively. Attributable to the fact that the material nonlinearity alters the third- and fourth-order elastic constants of the material, the proposed nonlinear three-wave mixing technique is more effective in identifying the material nonlinearity.
机译:本文提出了一种基于三波混合的新型非线性超声技术,以产生和测量三阶组合谐波(TOCH)检测板状结构中的材料非线性。该技术将三个输入超声波引入非线性结构的不同频率(例如,格子 - Anharmonicity)。这些波的相互相互作用在输入频率分量的混合频率下产生TOCH。所生成的TOCH和输入频率分量的幅度用于估计立方非线性参数,从而基于其相关的材料非线性。这里,立方非线性参数被定义为材料的第三和四阶弹性常数。开发了一种理论模型,以预测由于非线性结构中的输入波的相互相互作用而预测陷阱。此外,将铝样品的实验评估的材料非线性与理论模型估计的材料非线性进行比较。当满足相位匹配和非零功率通量条件时,观察到三阶谐波的幅度随着传播距离而急剧增加。因为材料非线性改变了材料的第三和四阶弹性常数,所以可以使用所提出的用于测量脚踏的技术来更有效地识别材料非线性。归因于材料非线性改变了材料的第三和四阶弹性常数,所提出的非线性三波混合技术在识别材料非线性方面更有效。

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