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Modeling of Fatigue Crack Induced Nonlinear Ultrasonics Using a Highly Parallelized Explicit Local Interaction Simulation Approach

机译:疲劳裂纹诱导的非线性超声的高并行化显式局部相互作用仿真方法建模

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This paper presents a parallelized modeling technique for the efficient simulation of nonlinear ultrasonics introduced by the wave interaction with fatigue cracks. The elastodynamic wave equations with contact effects are formulated using an explicit Local Interaction Simulation Approach (LISA). The LISA formulation is extended to capture the contact-impact phenomena during the wave damage interaction based on the penalty method. A Coulomb friction model is integrated into the computation procedure to capture the stick-slip contact shear motion. The LISA procedure is coded using the Compute Unified Device Architecture (CUDA), which enables the highly parallelized supercomputing on powerful graphic cards. Both the explicit contact formulation and the parallel feature facilitates LISA's superb computational efficiency over the conventional finite element method (FEM). The theoretical formulations based on the penalty method is introduced and a guideline for the proper choice of the contact stiffness is given. The convergence behavior of the solution under various contact stiffness values is examined. A numerical benchmark problem is used to investigate the new LISA formulation and results are compared with a conventional contact finite element solution. Various nonlinear ultrasonic phenomena are successfully captured using this contact LISA formulation, including the generation of nonlinear higher harmonic responses. Nonlinear mode conversion of guided waves at fatigue cracks is also studied.
机译:本文提出了一种并行建模技术,可以有效地模拟由波与疲劳裂纹的相互作用所引起的非线性超声。具有接触效应的弹性动力学波动方程是使用显式的局部相互作用模拟方法(LISA)制定的。 LISA公式被扩展为基于惩罚方法来捕获波浪损伤相互作用期间的接触冲击现象。库仑摩擦模型已集成到计算过程中,以捕获粘滑接触剪切运动。 LISA过程使用计算统一设备体系结构(CUDA)进行编码,该体系结构可在功能强大的图形卡上实现高度并行的超级计算。与传统的有限元方法(FEM)相比,显式接触公式和并行功能均有助于LISA的出色计算效率。介绍了基于罚分法的理论公式,并给出了正确选择接触刚度的指南。研究了在各种接触刚度值下溶液的收敛行为。数值基准问题用于研究新的LISA公式,并将结果与​​常规接触有限元解决方案进行比较。使用这种接触式LISA公式可以成功捕获各种非线性超声现象,包括生成非线性高次谐波响应。还研究了在疲劳裂纹处导波的非线性模式转换。

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