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Finite Element Simulation of Medium-Range Blast Loading Using LS-DYNA

机译:基于LS-DYNA的中程爆破载荷有限元模拟

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This study investigated the Finite Element simulation of blast loading using LS-DYNA. The objective is to identify approaches to reduce the requirement of computation effort while maintaining reasonable accuracy, focusing on blast loading scheme, element size, and its relationship with scale of explosion. The study made use of the recently developed blast loading scheme in LS-DYNA, which removes the necessity to model the explosive in the numerical models but still maintains the advantages of nonlinear fluid-structure interaction. It was found that the blast loading technique could significantly reduce the computation effort. It was also found that the initial density of air in the numerical model could be purposely increased to partially compensate the error induced by the use of relatively large air elements. Using the numerical approach, free air blast above a scaled distance of 0.4 m/kg1/3was properly simulated, and the fluid-structure interaction at the same location could be properly duplicated using proper Arbitrary Lagrangian Eulerian (ALE) coupling scheme. The study also showed that centrifuge technique, which has been successfully employed in model tests to investigate the blast effects, may be used when simulating the effect of medium- to large-scale explosion at small scaled distance.
机译:这项研究使用LS-DYNA研究了爆炸载荷的有限元模拟。目的是确定在保持合理准确性的同时减少计算工作量的方法,重点是爆炸加载方案,元素大小及其与爆炸规模的关系。这项研究利用了LS-DYNA中最新开发的爆炸加载方案,该模型消除了在数值模型中对炸药进行建模的必要性,但仍保留了非线性流固耦合的优势。发现爆炸加载技术可以显着减少计算量。还发现,可以有目的地增加数值模型中的空气初始密度,以部分补偿由于使用相对较大的空气元素而引起的误差。使用数值方法,可以正确地模拟尺度距离为0.4μm/ kg1 / 3以上的自由风,并且可以使用适当的任意拉格朗日欧拉(ALE)耦合方案正确地复制相同位置的流固耦合。研究还表明,在模拟试验中成功地使用离心技术来研究爆炸效果,在模拟小尺度距离上的中到大型爆炸的效果时,可以使用离心技术。

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