不同压缩速度下空心圆接头六角形蜂窝的平面内破碎行为

Y. Chen, Wenjun Zhao, Peijun Gao
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摘要

本文研究了分层六边形蜂窝的平面内破碎行为,该分层六边形蜂窝的结构是用一个小空心圆代替常规六边形蜂巢和可重入六边形蜂巢的每个三壁顶点。首先用文献中的经验公式对有限元模型进行了验证,然后进一步模拟了不同压缩速度下蜂窝的平面内破碎行为。在有限元模拟的基础上,研究了变形模式、高原应力和比能量吸收。与传统的分层蜂巢相比,在大多数情况下,重入分层蜂巢表现出更高的高原应力,但SEA较低。与基本六边形蜂窝相比,分层六边形蜂窝具有更高的平台应力和SEA,这表明分层设计在提高蜂窝的抗冲击能力和吸能能力方面是有效的。
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In‐Plane Crushing Behaviors of Hexagonal Honeycombs with Hollow‐Circle Joint under Different Compressive Velocities
The in‐plane crushing behaviors of hierarchical hexagonal honeycombs, structured by replacing every three‐wall vertex of both the conventional and reentrant hexagonal honeycombs with a small hollow‐circle, are investigated herein. The finite element (FE) models are first verified by an empirical formula from the literature and then further used to simulate the in‐plane crushing behaviors of the honeycombs under different compressive velocities. The deformation mode, plateau stress, and specific energy absorption (SEA) are studied based on the FE simulations. With respect to the conventional hierarchical honeycombs, the reentrant hierarchical honeycombs, in most instances, are found to exhibit higher plateau stress but lower SEA. It is remarkable that the hierarchical hexagonal honeycombs exhibit higher plateau stress and SEA than the basic hexagonal ones, which indicates that the hierarchical design is effective in improving both the impact resistance and energy absorption capabilities of the honeycombs.
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