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Use of damage-based mesh adaptivity to predict ductile failure in blast-loaded aluminium plates

机译:使用基于损伤的网格适应性来预测膨胀铝板中的球墨斗机失效

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This study uses experimental data to evaluate the capabilities of a numerical model in EUROPLEXUS (EPX) to predict ductile failure in thin aluminium plates subjected to blast loading. The loading was generated using a shock tube facility designed to expose structures to extreme loading conditions. The plates had an exposed area of 0.3 m x 0.3 m and experienced large deformations including failure at the supports at the largest blast intensities. Pressure measurements were synchronized with two high-speed cameras in a stereoscopic setup to capture the dynamic response using three-dimensional digital image correlation. The experimental results were used as basis for comparison to finite element (FE) simulations in EPX. Failure was introduced in the FE simulations using element erosion. Adaptive mesh refinement was applied in an attempt to describe the crack propagation observed in the experiments. The mesh refinement was driven by the damage parameter in the material model and occurred at user-defined levels. The numerical results were in good agreement with the experimental data, and were able to predict both the global deformation and the crack growth in the plates with good accuracy. The numerical model was also used to investigate the influence of FSI effects on the dynamic response of the plates. It was found that FSI may significantly mitigate the blast load acting on the plate, resulting in reduced deformations.
机译:本研究使用实验数据来评估Eutoplexus(EPX)中数值模型的能力,以预测经受喷射载荷的薄铝板中的延展性失效。使用冲击管设施产生装载,该电击管设施将结构暴露于极端负载条件。平板的暴露面积为0.3米×0.3米,经历了大变形,包括最大爆炸强度的支撑件的失效。压力测量与立体设置中的两个高速摄像机同步,以捕获使用三维数字图像相关性的动态响应。实验结果用作EPX中有限元(Fe)模拟的基础。使用元素侵蚀在FE模拟中引入了失败。应用自适应网格细化以试图描述在实验中观察到的裂缝繁殖。网眼细化由材料模型中的损伤参数驱动,并发生在用户定义的级别。数值结果与实验数据吻合良好,并且能够以良好的精度预测板块中的全球变形和裂缝生长。数值模型还用于研究FSI影响对板的动态响应的影响。发现FSI可以显着减轻作用在板上的爆破负荷,导致变形降低。

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