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Ballistic performance of monolithic and double layered thin-metallic hemispherical shells at normal and oblique impact

机译:正常和倾斜冲击的单层和双层薄金属半球壳的弹道性能

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摘要

The present study discusses experimental and numerical investigations on the ballistic performance of aluminum 1100-H12 hemispherical shell targets of 150 mm diameter against 19 mm diameter cylindrical steel projectiles. The influence of nose profile of the projectiles on the impact resistance of the targets, was observed by varying the nose geometry to ogive, blunt, conical and hemispherical shapes. Effect of normal as well as oblique impact on the failure mechanisms and perforation process of shells was studied at 0 (normal), 15 and 30. angle from the normal incidence path. Further, the ballistic performance of two target configurations, viz. 2 mm thick monolithic and double layered in-contact shell targets was investigated and compared within the configurations. The finite element analysis of the ballistic impact on shell targets was done in ABAQUS/Explicit solver by employing the Johnson - Cook constitutive strength and damage model for deformable target material, whereas all the projectiles were assumed as rigid body. The ballistic performance of both shell target configurations against oblique impacts with different projectiles was evaluated and compared in terms of ballistic limit, local and global deformations, failure mechanisms and plastic work done in radial, polar, meridional and shear deformations. The obtained experimental results were then compared with numerical simulations and found in good corroboration. It was observed that both monolithic and layered shell targets showed highest ballistic resistance against hemispherical nosed projectile. For all the projectiles, layered shell targets displayed higher energy dissipation than monolithic targets.
机译:本研究讨论了对150mm直径为150mm直径圆柱形钢射弹的1100-H12半球形壳体靶标的实验和数值研究。通过改变鼻部几何形状,观察到射弹对靶的抗冲击性的影响,从而使鼻部几何到初始,钝,圆周和半球形。在0(正常),15和30中,研究了正常的影响以及嵌壳对壳体的故障机制和穿孔过程的影响。来自正常入射路径的角度。此外,两个目标配置的弹道性能,viz。研究并在构造中进行了2毫米厚的整体层和双层壳体壳体靶标。通过采用Johnson-Cook组成强度和可变形目标材料的损伤模型,在ABAQUS /明确求解器中进行了对壳体目标的有限元分析。在弹道极限,局部和全球变形,故障机制和透射变形中完成的,在弹道极限,局部和全球变形,故障机制和塑性工作方面进行了评估和与不同射弹进行抗斜撞击的弹道性能。然后将获得的实验结果与数值模拟进行比较,并以良好的粗化存在。观察到整体和分层壳靶均显示出对半球形鼻子射弹的最大的抗坏焰抗性。对于所有射弹,分层壳目标显示比单片目标更高的能量耗散。

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