HARMONIC SCATTERING OF SH WAVES FROM A LOCALIZED DAMAGE: FINITE ELEMENT STUDIES

Pravinkumar R. Ghodake
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Abstract

Interaction of the monochromatic ultrasonic wave with the uniformly distributed micro-scale damages modeled as a weakly nonlinear solid generates higher harmonics. In practice, most of the metallic components under fatigue and fracture introduce highly localized early-stage damages like local plasticity and region of micro-cracks resulting in shear bands, etc. Theoretical studies by Tang (2012), Wang and Achenbach (2017), Kube (2018), and Wang et.al. (2019) on the interaction of the ultrasonic waves with localized material nonlinearities discuss the interesting effects of the scattered harmonic waves. Low amplitudes of the backscattered harmonic waves and the requirement of a specific set of wideband transducers make experimental studies hard. On the other hand, finite element studies presented in this paper demonstrate the interesting nature of harmonic scattering of the SH waves which will be helpful for the effective design of the laboratory experiments. Generation of backscattered Lamb waves by the interaction of SH wave with local damage due to monochromatic wave is verified with the analytical solution presented by Wang et.al. (2019). Only odd harmonics of the forward scattered SH waves are noted and only even harmonics of both backscattered and forward scattered Lamb waves are noted. Higher amplitudes of static components of Lamb waves are observed due to their cumulative nature similar to higher harmonics. The effect of harmonic scattering in nonlinear guided wave mixing is also studied by considering one-way and two-way two-wave mixing of SH waves. A greater number of sum and difference frequencies along with the odd and even harmonics of both the backscattered and forward scattered waves are noted in codirectional wave mixing, as the complete local damage region is covered by the mixing zone. In two-way mixing, the zero group velocity Lamb waves are generated at the local nonlinear material region. Both backscattered and forward scattered waves contain only Lamb waves with sum and difference frequencies and corresponding odd and even harmonics. To understand the effect of the intensity and size of the localized nonlinear material region various studies are carried out by scaling nonlinear material parameters and geometric size of the local damages (0-20 mm). Observed various characteristics of harmonically scattered waves show their potential in quantifying the intensity, size, and position of local damages by solving simple inverse problems.
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局部损伤中sh波的谐波散射:有限元研究
单色超声与均匀分布的弱非线性固体微尺度损伤的相互作用产生高次谐波。在实际应用中,大多数金属构件在疲劳断裂过程中都会出现局部塑性、微裂纹区域产生剪切带等高度局部化的早期损伤。Tang(2012)、Wang and Achenbach(2017)、Kube(2018)和Wang等人的理论研究。(2019)关于超声波与局部材料相互作用的研究,非线性讨论了散射谐波的有趣效应。低幅值的后向散射谐波和特定的一组宽带换能器的要求使得实验研究变得困难。另一方面,本文的有限元研究表明了SH波谐波散射的有趣性质,这将有助于有效地设计实验室实验。用Wang等人的解析解验证了SH波与单色波局部损伤相互作用产生后向散射Lamb波。(2019)。前向散射的SH波只有奇次谐波,后向散射和前向散射的Lamb波都只有偶次谐波。由于兰姆波的累积性质类似于高次谐波,因此观察到兰姆波静态分量的振幅较高。通过考虑SH波的单向和双向两波混频,研究了谐波散射对非线性导波混频的影响。在共向混频中,后向散射波和前向散射波的和频和差频以及奇偶谐波都较多,因为整个局部损伤区域被混频区覆盖。双向混合时,在局部非线性材料区产生零群速度兰姆波。后向散射波和前向散射波都只包含和频和差频的兰姆波以及相应的奇偶谐波。为了了解局部非线性材料区域的强度和尺寸的影响,通过缩放非线性材料参数和局部损伤的几何尺寸(0-20 mm)进行了各种研究。观测到的谐波散射波的各种特性显示了它们在通过求解简单逆问题来量化局部损伤的强度、大小和位置方面的潜力。
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