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Penetration Capability of EFPs Against Explosive Reactive Armor

机译:EFPS对爆炸式反应式盔甲的渗透能力

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摘要

This study aimed to investigate the interference of explosive reactive armor (ERA) on the penetration capability of explosively formed projectiles (EFPs). A numerical simulation model of EFP and the ERA interaction system was established. Flash X-ray experiments for observing the interaction between EFP and ERA were performed. It turned out that the simulation method and material model was valid. From the numerical simulation, the residual depth of penetration (RDOP) of EFPs with different materials, scales, and shapes at several angles was evaluated, and the mechanism of ERA interference EFP was revealed. The results suggested that after an EFP passed through an ERA, its RDOP to target decreased with an increase in the angle and explosive layer thickness. The higher the density of EFP is, the stronger the resistance ability of EFP to ERA is. For copper EFPs, in the EFP charge diameter range of 90mm to 170mm, each 10-mm growth in the EFP charge diameter results in an approximately 0.025 P-0 increment in RDOP (P-0 is penetration depth of EFP without ERA interference). Moreover, in the condition of the same mass, for each increase of 1 in the aspect ratio of the EFP, the RDOP increased by approximately 0.05 P-0. In addition, calculation models for the RDOP, considering the charge diameter and EFP shape, were established respectively.
机译:本研究旨在调查爆炸式反应铠装(ERA)对爆炸形成射弹(EFPS)的渗透能力的干扰。建立了EFP和ERA交互系统的数值模拟模型。进行用于观察EFP和ERA之间的相互作用的闪光X射线实验。事实证明,仿真方法和材料模型有效。从数值模拟中,评估了具有不同材料,尺度和形状的EFP的渗透(RDOP)的残余深度(RDOP)在几个角度下进行了分析,并且揭示了ERA干扰EFP的机制。结果表明,在通过EFP通过时代的EFP之后,其RDOP与角度和爆炸层厚度的增加随着角度和爆炸层厚度的增加而降低。 EFP的密度越高,EFP对时代的耐受能力越强。对于铜EFP,在EFP电荷直径范围为90mm至170mm的范围内,EFP电荷直径的每个10毫米生长导致RDOP中约0.025p-0增量(P-0是EFP的渗透深度而没有EFA干扰)。此外,在相同的质量条件下,对于EFP的纵横比的每次增加1,RDOP增加约0.05p-0。另外,分别建立了考虑电荷直径和EFP形状的RDOP的计算模型。

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