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Perforation of Aluminum Foam Core Sandwich Panels under Impact Loading: A Numerical Study

机译:冲击载荷下铝泡沫芯夹层面板的穿孔:数值研究

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This paper reports the numerical results of the inversed perforation test instrumented by Split Hopkinson Pressure Bar SHPB with an instrumented pressure bar on the AlSi7Mg 0.5 aluminum foam core sandwich panels with 0.8mm thick 2024 T3 aluminum top and bottom skin. The numerical models are developed, in order, to understand the origin of enhancement at the top skin loads found under impact loading (paper published by (Zhao et al. 2006)). The predicted numerical piercing force vs. the displacement curves are compared to the experimental measurements (tests at impact velocities at 27 and 44 m/s). The simulation catches all processes of the perforation of the sandwich panels (top skin, foam core, and bottom skin). Within this experimental scatter, there is a good agreement between the numerical predictions and the experimental measurements. Virtual tests with different impact velocities up to 200 m/s are presented and showed a significant enhancement of the piercing force under impact loading (top skin peak and foam core plateau loads). The results also demonstrate that the shock front effect is responsible for the enhancement of the piercing force under impact loading.
机译:本文报告了通过拆分Hopkinson压力棒SHPB用型号的助力杆,在ALSI7MG 0.5铝泡沫芯夹层板上用仪表压力棒提供了逆向穿孔试验的数值结果,其具有0.8mm厚的2024T3铝顶和底部皮肤。按顺序开发了数值模型,以了解在冲击载荷下发现的顶部皮肤载荷的增强起源(由(Zhao等人2006)发布的文件)。预测的数值刺穿力与位移曲线与实验测量相比(在27和44米/秒处的冲击速度测试)。仿真捕获了夹层面板穿孔的所有过程(顶部皮肤,泡沫核心和底部皮肤)。在该实验散射中,数值预测和实验测量之间存在良好的一致性。提出了多达200米/秒的不同冲击速度的虚拟测试,并显示了冲击载荷(顶部皮肤峰和泡沫核心高原)下的刺穿力的显着增强。结果还表明,冲击前效应负责增强冲击载荷下的刺穿力。

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