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Modeling and Imaging of Ultrasonic Array Inspection of Side Drilled Holes in Layered Anisotropic Media

机译:分层各向异性介质侧钻孔超声阵列检查的建模与成像

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摘要

There has been an increase in the use of ultrasonic arrays for the detection of defects in composite structures used in the aerospace industry. The response of a defect embedded in such a medium is influenced by the inherent anisotropy of the bounding medium and the layering of the bounding medium and hence poses challenges for the interpretation of the full matrix capture (FMC) results. Modeling techniques can be used to understand and simulate the effect of the structure and the defect on the received signals. Existing modeling techniques, such as finite element methods (FEM), finite difference time domain (FDTD), and analytical solutions, are computationally inefficient or are singularly used for structures with complex geometries. In this paper, we develop a novel model based on the Gaussian-based recursive stiffness matrix approach to model the scattering from a side-drilled hole embedded in an anisotropic layered medium. The paper provides a novel method to calculate the transmission and reflection coefficients of plane waves traveling from a layered anisotropic medium into a semi-infinite anisotropic medium by combining the transfer matrix and stiffness matrix methods. The novelty of the paper is the developed model using Gaussian beams to simulate the scattering from a Side Drilled Hole (SDH) embedded in a multilayered composite laminate, which can be used in both immersion and contact setups. We describe a method to combine the scattering from defects with the model to simulate the response of a layered structure and to simulate the full matrix capture (FMC) signals that are received from an SDH embedded in a layered medium. The model-assisted correction total focusing method (MAC-TFM) imaging is used to image both the simulated and experimental results. The proposed method has been validated for both isotropic and anisotropic media by a qualitative and quantitative comparison with experimentally determined signals. The method proposed in this paper is modular, computationally inexpensive, and is in good agreement with experimentally determined signals, and it enables us to understand the effects of various parameters on the scattering of a defect embedded in a layered anisotropic medium.
机译:超声阵列的使用是有所增加,用于检测航空航天工业中使用的复合结构中的缺陷。嵌入在这种介质中的缺陷的响应受边界介质的固有各向异性的影响和边界介质的分层,因此对解释完整矩阵捕获(FMC)结果构成了挑战。建模技术可用于理解和模拟结构的效果和接收信号上的缺陷。现有的建模技术,例如有限元方法(FEM),有限差分时域(FDTD)和分析解决方案,是计算效率低,或者是具有复杂几何形状的结构的奇异。在本文中,我们基于高斯基递归刚度矩阵方法开发一种新型模型,以将侧钻孔的散射模拟嵌入在各向异性分层介质中的侧钻孔。本文通过组合转移矩阵和刚度基质方法,提供一种新的方法来计算从层状各向异性培养基从层状各向异性培养基行驶的平面波的透射和反射系数,进入半无限各向异性介质。本文的新颖性是使用高斯光束的开发模型,以模拟嵌入在多层复合层压板中的侧钻孔(SDH)的散射,其可用于浸没和接触设置。我们描述了一种将散射与模型组合的方法来模拟分层结构的响应,并模拟从嵌入在分层介质中的SDH接收的完整矩阵捕获(FMC)信号。模型辅助校正总重点方法(MAC-TFM)成像用于图像模拟和实验结果。通过与实验确定的信号进行定性和定量比较,已经通过定性和定量比较验证了所提出的方法。本文提出的方法是模块化的,计算地廉价,并且与实验确定的信号很好,并且它使我们能够了解各种参数对嵌入层状各向异性介质中缺陷的散射的影响。

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