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Simulation of impact ballistic of Cu-10wtSn frangible bullet using smoothed particle hydrodynamics

机译:Cu-10wt%Sn脆弱子弹使用平滑粒子流体动力学模拟

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Frangible bullet is designed to disintegrate upon impact against a hard target. Understanding the impact response and performance of frangible bullet is therefore of highly interest. In this paper, simulation of impact ballistic of Cu-IOwt%Sn frangible bullet using smoothed particle hydrodynamics (SPH) method is presented. The frangible bullet is impacted against a hard, cylindrical stainless steel target. Effect of variability of the frangible bullet material properties due to the variation of sintering temperature in its manufacturing process to the bullet frangibility factor (FF) is investigated numerically. In addition, the bullet kinetic energy during impact as well as its ricochet and fragmentation are also examined and simulated. Failure criterion based upon maximum strain is employed in the simulation. It is shown that the SPH simulation can produce good estimation for kinetic energy of bullet after impact, thus giving the FF prediction with respect to the variation of frangible bullet material properties. In comparison to explicit finite element (FE) simulation, in which only material/element deletion is shown, convenience in showing frangible bullet fragmentation is shown using the SPH simulation. As a result, the effect of sintering temperature to the way of the frangible bullet fragmented can be also observed clearly.
机译:易碎的子弹被设计用于对抗硬目标的影响。因此,了解脆弱子弹的影响和性能是非常感兴趣的。本文介绍了使用平滑粒子流体动力学(SPH)法的Cu-IOWT%Sn易碎子弹的模拟。脆弱的子弹受到硬质圆柱形不锈钢目标的影响。数值研究了由于其制造过程中的烧结温度变化而导致的易碎子弹材料特性的变化的影响。此外,还检查和模拟了影响期间的子弹动能以及其碎片。基于最大应变的故障标准在模拟中采用。结果表明,SPH仿真可以在冲击后的弹子的动能产生良好的估计,从而为FF预测相对于易碎子弹材料特性的变化。与显式有限元(FE)仿真相比,仅示出了材料/元素删除,使用SPH仿真示出了显示易碎子弹碎片的便利性。结果,还可以清楚地观察到烧结温度对脆弱子弹碎片的方式的影响。

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