射弹
弹道极限
材料科学
搅拌摩擦焊
弹道冲击
焊接
有限元法
铝
残余物
变形(气象学)
动能
残余应力
结构工程
复合材料
LS-DYNA系列
机械
冶金
物理
工程类
计算机科学
经典力学
算法
作者
S. Balaji,S. Dharani Kumar,U. Magarajan,S. Rameshbabu,S. Ganeshkumar,Shubham Sharma,Shaimaa A. M. Abdelmohsen,Indranil Saha,Sayed M. Eldin
出处
期刊:PLOS ONE
[Public Library of Science]
日期:2023-07-27
卷期号:18 (7): e0285254-e0285254
被引量:5
标识
DOI:10.1371/journal.pone.0285254
摘要
This research aims to investigate the ballistic resistance of base material (BM)and “Friction Stir Welded (FSW)”, AA5083 aluminum alloy. The primary objective was to build a finite element model to predict kinetic energy absorption and target deformation under single and multiple projectile impact conditions. This study employed 7.62mm Hard Steel Core (HSC) projectiles produced from Steel 4340. The target was analyzed using commercially available Abaqus Explicit software for Finite Element Analysis. It was noticed that the generation of kinetic energy and surface residual velocity increases as the number of projectile strikes increases. In addition, the experimental ballistic test was conducted to validate the numerical results. Using the analytical Recht-Ipson model, each target’s experimental residual velocity was determined. It was determined that weldments perform less well (30%) as compared to BM targets. Occurrence of plastic deformation during welding causes reduction in ballistic performance of weldments. For both the computational and experimental approaches, a correlation between residual velocities was found. The plastic deformations with ductile hole formation were observed in all the cases.
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