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Applicability of Statistical Descriptions of AerMet100 Steel Subjected to Different Triaxial Stress States for Fracture Calculations

机译:Aermet100钢统计描述对不同三轴应力状态进行裂缝计算的适用性

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Computational continuum codes can provide many details on the response of metals to explosive loading. However most "production" level calculations use a homogeneous description of the metal. This is an incorrect representation since metals possess a microstructure whose details create variations in material strength and other properties such as strain to failure Ultimately these variations influence the formation of fragments at the macroscopic level. The spatial scale of the microstructure is on the order of micrometers and is not readily accessible to current computational tools and resources for system level calculations. Rather than explicitly model the microstructure one can attempt to capture the effects of material non-homogeneity through the use of a statistical description. Specifically, a statistically compensated Johnson-Cook fracture model can be used to simulate the non-homogeneity of a material. This analysis proceeded in two steps using experimental data available from earlier fragmentation work conducted on AerMet100 steel. In those experiments, a sphere was fractured by impact with a thin plate and a cylinder was fractured through explosive loading. Therefore, the sphere and the cylinder experienced significantly different triaxial stress states. In the first step, the distribution of failure strains required to produce an accurate solution for the explosively loaded cylinder was determined via Eulerian-Lagrangian calculations using Sierra Fortissimo. Sierra Fortissimo is a tool that allows for different code coupling techniques between CTH and Sierra Presto. In the second step, this distribution was applied to the sphere impact using the explicit dynamics code Sierra Presto. Comparisons of the sphere calculation results are made to the experimental fragmentation data and the results are analyzed in the context of triaxial stress states.
机译:计算连续核代码可以提供有关金属响应到爆炸性装载的许多细节。然而,大多数“生产”水平计算使用均匀描述金属。这是一种不正确的表示,因为金属具有微观结构,其细节产生了材料强度和其他特性的变化,例如诸如菌株的变化,最终这些变化会影响宏观水平的片段的形成。微结构的空间尺度是在微米的阶数,并且对于系统级计算的当前计算工具和资源而言,不容易访问。不是明确地模拟微结构,可以尝试通过使用统计描述来捕获材料非均匀性的效果。具体地,统计补偿的约翰逊烹饪骨折模型可用于模拟材料的非均匀性。该分析采用两步进行了使用从Aermet100钢的早期碎片作品提供的实验数据进行。在这些实验中,球体通过用薄板的冲击破裂,通过爆炸载荷裂缝圆柱体。因此,球体和汽缸具有显着不同的三轴应力状态。在第一步中,通过使用Sierra Fortissimo通过Eulerian-lagrangian计算确定生产精确的爆炸式圆柱体所需的失效菌株的分布。 Sierra Fortissimo是一个工具,允许CTH和Sierra Presto之间的不同代码耦合技术。在第二步中,使用明确的动态代码Sierra Presto将该分布应用于球体影响。球形计算结果的比较是对实验碎片数据的,并在三轴应力状态下分析结果。

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