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穿甲弹高速冲击下双层金属屏蔽层抗穿孔性能的试验与数值研究

Experimental and Numerical Investigation on the Perforation Resistance of Double-Layered Metal Shield under High-Velocity Impact of Armor-Piercing Projectiles.

作者信息

Scazzosi Riccardo, Giglio Marco, Manes Andrea

机构信息

Politecnico di Milano, Department of Mechanical Engineering, via la Masa, 1, 20156 Milan, Italy.

出版信息

Materials (Basel). 2021 Jan 29;14(3):626. doi: 10.3390/ma14030626.

DOI:10.3390/ma14030626
PMID:33573014
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7866384/
Abstract

In the case of protection of transportation systems, the optimization of the shield is of practical interest to reduce the weight of such components and thus increase the payload or reduce the fuel consumption. As far as metal shields are concerned, some investigations based on numerical simulations showed that a multi-layered configuration made of layers of different metals could be a promising solution to reduce the weight of the shield. However, only a few experimental studies on this subject are available. The aim of this study is therefore to discuss whether or not a monolithic shield can be substituted by a double-layered configuration manufactured from two different metals and if such a configuration can guarantee the same perforation resistance at a lower weight. In order to answer this question, the performance of a ballistic shield constituted of a layer of high-strength steel and a layer of an aluminum alloy impacted by an armor piercing projectile was investigated in experimental tests. Furthermore, an axisymmetric finite element model was developed. The effect of the strain rate hardening parameter C and the thermal softening parameter m of the Johnson-Cook constitutive model was investigated. The numerical model was used to understand the perforation process and the energy dissipation mechanism inside the target. It was found that if the high-strength steel plate is used as a front layer, the specific ballistic energy increases by 54% with respect to the monolithic high-strength steel plate. On the other hand, the specific ballistic energy decreases if the aluminum plate is used as the front layer.

摘要

在运输系统防护方面,优化防护板对于减轻此类部件重量从而增加有效载荷或降低燃料消耗具有实际意义。就金属防护板而言,一些基于数值模拟的研究表明,由不同金属层构成的多层结构可能是减轻防护板重量的一种有前景的解决方案。然而,关于这一主题的实验研究很少。因此,本研究的目的是探讨单片防护板是否可以被由两种不同金属制成的双层结构所替代,以及这种结构在重量更低的情况下是否能保证相同的抗穿孔性能。为了回答这个问题,在实验测试中研究了由一层高强度钢和一层铝合金组成的防弹防护板在受到穿甲弹撞击时的性能。此外,还建立了一个轴对称有限元模型。研究了约翰逊 - 库克本构模型的应变率硬化参数C和热软化参数m的影响。该数值模型用于理解靶体内的穿孔过程和能量耗散机制。结果发现,如果将高强度钢板用作外层,相对于单片高强度钢板,比弹道能量增加了54%。另一方面,如果将铝板用作外层,比弹道能量会降低。

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