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Comparison of calculated and experimental results of fragmenting cylinder experiments

机译:破碎圆筒实验的计算结果与实验结果的比较

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The Grady-Kipp fragmentation model provides a physically based method for determining the fracture and breakup of materials under high loading rates. Recently, this model has been implemented into the CTH Shock Physics Code and has been used to simulate several published experiments. Materials studied in this paper are AerMet 100 steel and a 90% tungsten alloy. The experimental geometry consists of a right circular cylinder filled with an explosive main charge that is initiated at its center. The sudden expansion of the resulting detonation products causes fracture of the cylinder. Strain rates seen in the cylinder are on the order of 10~4 s~(-1). The average fragment sizes calculated with the Grady-Kipp fragmentation model successfully replicate the mean fragment size obtained from the experimental fragment distribution. When Poisson statistics are applied to the calculated local average fragment sizes, good correlation is also observed with the shape of the experimental cumulative fragment distribution. The experimental fragmentation results, CTH numerical simulations, and correlation of these numerical results with the experimental data are described.
机译:Grady-Kipp破碎模型提供了一种基于物理的方法来确定高加载速率下材料的断裂和破裂。最近,该模型已在CTH冲击物理代码中实现,并已用于模拟多个已发布的实验。本文研究的材料是AerMet 100钢和90%的钨合金。实验几何结构由一个直圆柱体组成,圆柱体中部充满爆炸性主装药。所产生的爆炸产物的突然膨胀导致气缸破裂。圆柱体中的应变速率约为10〜4 s〜(-1)。用Grady-Kipp片段化模型计算的平均片段大小成功地复制了从实验片段分布获得的平均片段大小。当将泊松统计信息应用于计算出的局部平均片段大小时,还可以观察到与实验累积片段分布形状的良好相关性。描述了实验碎片结果,CTH数值模拟以及这些数值结果与实验数据的相关性。

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