Agarwal V, Shelke A, Ahluwalia B S, Melandsø F, Kundu T, Habib A
Department of Civil Engineering, Indian Institute of Technology Guwahati, Assam 781039, India.
Department of Civil Engineering, Indian Institute of Technology Guwahati, Assam 781039, India.
Ultrasonics. 2020 Dec;108:106113. doi: 10.1016/j.ultras.2020.106113. Epub 2020 Mar 2.
A novel experimental technique based on point contact and Coulomb coupling is devised and optimized for ultrasonic imaging of bulk and guided waves propagation in piezo-ceramics. The Coulomb coupling technique exploits the coupling and transfer of electric field to mechanical vibrations by excitation of phonons. The point contact excitation and detection technique facilitates the spatial-temporal imaging of ultrasonic waves. The motivation of this research is the diagnosis and localization of surface cracks in the piezoelectric sensors and actuators. The underlying principle of the detection scheme is that any discontinuity on the surface causes high localization of electric gradient. The localized electric field at the defect boundaries enables then to behave as secondary passive ultrasonic sources resulting in strong back reflections. However, due to the interference between transmitted and reflected wave components from rigid boundaries and defect, the resolution on the localization of the damage is challenging. Therefore, an algorithm based on the two-dimensional spectral decomposition is utilized for selective suppression of the transmitted wave. The algorithm includes data transformation and vectorization in polar coordinates for efficient spectral decomposition. In the spectral domain, the complex wave component (phase and amplitude) are suppressed for the transmitted wave field. The reflected wave component in the spectral domain is retained and retrieved back using inverse spectral transformation. The algorithm is successful in retaining and exemplifying only the reflected wave sources arising from the strong scattering of ultrasonic waves from the surface and sub-surface defects. In summary, a novel experimental technique based on Coulomb coupling and spectral decomposition technique has been implemented for localization of surface defect in piezo-ceramic structures.
一种基于点接触和库仑耦合的新型实验技术被设计并优化,用于对压电陶瓷中体波和导波传播进行超声成像。库仑耦合技术通过激发声子来利用电场与机械振动之间的耦合和转换。点接触激发和检测技术有助于对超声波进行时空成像。本研究的动机是对压电传感器和致动器中的表面裂纹进行诊断和定位。该检测方案的基本原理是表面上的任何不连续性都会导致电场梯度高度局部化。缺陷边界处的局部电场随后能够充当二次无源超声源,从而产生强烈的背向反射。然而,由于来自刚性边界和缺陷的透射波和反射波分量之间的干扰,损伤定位的分辨率具有挑战性。因此,利用一种基于二维谱分解的算法来选择性抑制透射波。该算法包括在极坐标中的数据变换和矢量化,以实现高效的谱分解。在谱域中,对透射波场的复波分量(相位和幅度)进行抑制。谱域中的反射波分量被保留,并通过逆谱变换检索回来。该算法成功地仅保留并例证了由表面和亚表面缺陷对超声波的强烈散射产生的反射波源。总之,一种基于库仑耦合和谱分解技术已被用于压电陶瓷结构中表面缺陷的定位。