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Ballistic resistance of high hardness armor steels against 7.62 mm armor piercing ammunition

机译:高硬度铠装钢的防弹性能,可抵抗7.62毫米的穿甲弹

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摘要

Although advanced lightweight composite based armors are available, high hardness steels in military vehicles are often used to provide ballistic protection at a relatively low cost and is an interesting material due to its widespread usage in vehicle structure. In this study, ballistic limit of 500 HB armor steel was determined against 7.62 mm 54R B32 API hardened steel core ammunition. Lagrange and smoothed particle hydrodynamics (SPH) simulations were carried out using 3D model of bullet and high hardness armor target. Perforation tests on 9 and 20 mm thickness armor were performed to validate simulation methodology. Also material tests were performed for armor steel and ammunition hardened steel core to develop Johnson-Cook constitutive relations for both strength and failure models. Finally, results from 3D numerical simulations with detailed models of bullet and target were compared with experiments. The study indicates that the ballistic limit can be quantitatively well predicted independent of chosen simulation methodology, but qualitatively some differences are seen during perforation and fragmentation. As shown in results, good agreement between Ls-Dyna simulations and experimental data was achieved by Lagrange formulation with the full bullet model.
机译:尽管可以使用先进的轻型复合材料装甲,但军用车辆中的高硬度钢通常用于以相对较低的成本提供弹道防护,并且由于其在车辆结构中的广泛使用而成为令人感兴趣的材料。在这项研究中,针对7.62毫米54R B32 API硬化钢芯弹药确定了500 HB装甲钢的弹道极限。使用子弹和高硬度装甲目标的3D模型进行了Lagrange和平滑粒子流体动力学(SPH)模拟。对9毫米和20毫米厚度的装甲进行了穿孔测试,以验证模拟方法。还对装甲钢和弹药硬化钢芯进行了材料测试,以开发强度和破坏模型的Johnson-Cook本构关系。最后,将3D数值模拟的结果以及子弹和目标的详细模型与实验进行了比较。研究表明,弹道极限可以独立于所选择的模拟方法而定量地预测,但定性地看到在射孔和破碎过程中存在一些差异。如结果所示,通过采用完整子弹模型的拉格朗日公式,Ls-Dyna模拟与实验数据之间取得了很好的一致性。

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