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Coupled Fluid-Structure Analysis of Explosive Driven Fragmentation of Cylindrical Shell

机译:圆柱壳爆炸驱动破裂的流固耦合分析

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The accurate numerical simulation of the dynamic response and failure of a structure to an explosive detonation product is a complex problem, involved with coupled fluid-solid description and dynamic failure of solid. This paper presents fully three-dimensional, coupled fluid-structure numerical simulations of high explosives detonated within cylindrical shell. In the analysis, the high explosive detonation and expansion are modeled using a high resolution Euler FCT solver, while the shell modeled using a Lagrangian type of solver. The Euler solver is dynamically coupled in space and time with a Lagrange solver that describes the response of cylindrical shell. In simulation of failure process, the Grady spall model, JC failure model and Gurson meso-damage model are applied to simulate the damage and fracture process of cylinders subjected to internal explosive loading. The alculations show that there are two types of failure modes in OFHC cylinders, they are spallation and shear fracture. The spall occurs at early stage, due to radial tension (parallel tension), while shear fracture happens due to shear bands and necking induced by loop tension (vertical tension) of shells after two part formation by spallation. The spall occurs only in cylinders with thick wall. In thin cylindrical shells the shear fracture predominates in expanding process, and periodicity of instability occurs. For dynamic fracture of ductile materials, application of Gurson modes gives reasonable numerical simulation of shear band nucleation, evolution and local necking fractures.
机译:对爆炸物的动态响应和结构破坏的精确数值模拟是一个复杂的问题,涉及流固耦合和固体的动态破坏。本文提出了在圆柱壳内爆炸的高爆炸药的全三维耦合流固数值模拟。在分析中,使用高分辨率的Euler FCT解算器对高炸药的起爆和膨胀进行建模,而使用拉格朗日型解算器对壳体进行建模。欧拉求解器在空间和时间上与描述圆柱壳响应的拉格朗日求解器动态耦合。在失效过程的仿真中,采用了格雷迪剥落模型,JC失效模型和格森细观损伤模型来模拟承受内部爆炸载荷的气缸的损伤和断裂过程。结果表明,OFHC钢瓶有两种类型的破坏模式,即散裂和剪切断裂。剥落发生在早期,这是由于径向张力(平行拉力)引起的,而剪切破裂是由于剥落的两部分形成后,由于壳的环带张力(垂直拉力)引起的剪切带和颈缩而发生了剪切断裂。剥落仅在壁厚较厚的钢瓶中发生。在薄的圆柱壳中,剪切断裂在膨胀过程中占主导地位,并且会出现不稳定的周期性。对于延性材料的动态断裂,Gurson模式的应用为剪切带成核,演化和局部颈缩断裂提供了合理的数值模拟。

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