Modeling the perforation failure of honeycomb sandwich structures through numerical homogenization

U. A. Dar, Zhang Weihong, Xu Yingjie
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引用次数: 2

Abstract

In this study, the perforation failure of honeycomb sandwich structures is numerically simulated by using homogenized equivalent model. The high velocity impact behavior of aluminum honeycomb core with reinforced carbon/epoxy face sheets is modeled by using commercial finite element (FE) analysis code AUTODYN-3D. It is observed that the detailed three dimensional FE modeling of honeycomb core is complex, time consuming and computationally expensive. A simplified hexagonal honeycomb equivalent numerical model with relatively less computational time and acceptable degree of accuracy is proposed in this paper. The equivalent numerical model is based on P-alpha (Pα) equation of state for porous materials. In this model, it is assumed that honeycomb core is isotropic homogeneous porous medium in which all the pores are uniformly distributed. For the purpose of validation, the simulation results of detailed and equivalent honeycomb numerical models are compared with available experimental results in terms of ballistic limit, energy absorption, residual velocity and contact time. The results show that the equivalent honeycomb model closely predicts the perforation behavior for various impact velocities and takes considerably less computational time than detailed honeycomb model.
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采用数值均匀化方法模拟蜂窝夹层结构的穿孔破坏
本文采用均质等效模型对蜂窝夹层结构的穿孔破坏进行了数值模拟。采用商用有限元分析软件AUTODYN-3D对碳纤维/环氧树脂增强面板铝蜂窝芯的高速冲击行为进行了模拟。结果表明,蜂窝芯三维有限元详细建模复杂、耗时、计算量大。本文提出了一种简化的六边形蜂窝等效数值模型,计算时间相对较少,精度可接受。多孔材料的等效数值模型基于p - α (Pα)状态方程。在该模型中,假设蜂窝芯是各向同性的均匀多孔介质,其中所有孔隙均匀分布。从弹道极限、能量吸收、残余速度和接触时间等方面,将蜂窝细化和等效数值模型的仿真结果与已有的实验结果进行了比较。结果表明,等效蜂窝模型能较好地预测不同冲击速度下的射孔行为,且计算时间明显少于详细蜂窝模型。
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