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首页> 外文期刊>Journal of Sandwich Structures and Materials >Quasi-static Crushing Behavior of Aluminum Honeycomb Materials
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Quasi-static Crushing Behavior of Aluminum Honeycomb Materials

机译:铝蜂窝材料的准静态破碎行为

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The quasi-static crushing behavior of aluminum honeycomb materials is thoroughly evaluated using a combined experimental, analytical, and numerical approach. Based on experimental characterization, the constitutive properties of the honeycomb cores under flat-wise compression are approximated by an elastic perfectly plastic material with inclusion of hardening after densification. Two different cell size materials are tested and compared, and the effect of strain rate on the crushing stress is studied. The experimental results show that the crushing platen stress is directly related to the relative density of core materials, and it can be associated with the strain rate, even though the effect of strain rates is not so dominant based on the conducted quasi-static tests. A simple physical model for predicting the crushing wave length and stress is proposed and compared with the experimental data and available formulas in the literature. It is observed that the crushing wave length is close to the cell size and related to the geometric dimension and strain rate. The Folding mechanism is also measured by the ARAMIS system (a photogrammetry technique), and the measured von Mises strains are compared with the numerical results from LS-DYNA, demonstrating that the folding mechanism is initiated by two plastic hinge lines formed at the cell corners. Multilayer effect is also investigated, and it indicates that including the second layer slightly decreases the maximal crushing stress, but the simple superposition is still applicable for crushing multilayer honeycomb cores with different density. Partial crushing due to small size cylindrical indenter is further studied, and the experiment shows that the partial crushing process can be described by an elastic-plastic hardening material. Side impact process of honeycomb materials is also investigated, and the collapse band and its propagation process are captured. The thorough characterization of core crushing behavior conducted in this study provides better understanding of the failure process of honeycomb materials and can be further employed to study energy absorption and impact response of sandwich structures.
机译:使用组合的实验,分析和数值方法,对铝蜂窝材料的准静态破碎行为进行了全面评估。基于实验特征,在扁平压缩下,蜂窝状芯的本构特性可通过弹性完美的塑性材料(包括致密化后的硬化)来估计。测试和比较了两种不同单元尺寸的材料,并研究了应变速率对破碎应力的影响。实验结果表明,压板的应力与芯材的相对密度直接相关,并且与应变率有关,尽管基于进行的准静态测试,应变率的影响并不那么明显。提出了一个简单的物理模型来预测破碎波长和应力,并与实验数据和文献中的可用公式进行了比较。观察到破碎波长接近于单元尺寸,并且与几何尺寸和应变率有关。还通过ARAMIS系统(摄影测量技术)测量了折叠机制,并将测得的von Mises应变与LS-DYNA的数值结果进行了比较,表明折叠机制是由在细胞角处形成的两条塑料铰链线引发的。还研究了多层效应,它表明包括第二层会略微减小最大破碎应力,但是简单的叠加仍然适用于破碎具有不同密度的多层蜂窝状芯。进一步研究了由于小尺寸圆柱压头造成的局部破碎,实验表明,可以用弹塑性硬化材料来描述局部破碎的过程。还研究了蜂窝材料的侧面碰撞过程,并记录了塌陷带及其传播过程。在这项研究中进行的核心破碎行为的全面表征可以更好地了解蜂窝材料的破坏过程,并且可以进一步用于研究夹层结构的能量吸收和冲击响应。

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