Glass Sponge-inspired Auxetic Mechanical Metamaterials for Energy Absorption

IF 4.9 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Chao Xu, Qiwei Li, Lu Zhang, Qingping Liu, Luquan Ren
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Abstract

The Auxetic Structure (AS) exhibits significant densification strain due to its concave cell architecture, functioning as an effective energy-absorbing metamaterial. However, its limited plateau stress hampers further enhancement of energy absorption. The deep-sea Glass Sponge (GS) has high plateau stress due to its diagonal braces. Inspired by GS, the Glass-Sponge-Auxetic Structure (GSAS) is proposed, featuring concave cells reinforced by diagonal braces to achieve both high plateau stress and densification strain. Different structural configurations incorporating various brace arrangements and thicknesses for GSAS are designed and compared through finite element analysis. An optimal GSAS is achieved with a 0.5 mm strut thickness and an asymmetric arrangement of crossing and uncrossing braces. The GSAS is fabricated using Ti6Al4V through selective laser melting and compared with AS, GS, body-centered cube, and honeycomb in compression tests. The unique bending-stretching deformation and non-simultaneous fracturing pattern results in simultaneous high plateau stress and densification strain, and the highest energy absorption and specific energy absorption. Compared to AS, these values are enhanced by 156% and 75%, respectively. The exceptional energy absorption capability of GSAS presents promising prospects in fields such as automobile collision avoidance and vibration damping, with its customizable cell numbers offering the potential for more specific applications.

Abstract Image

用于吸收能量的玻璃海绵启发式辅助机械超材料
磁性结构(Auxetic Structure,AS)因其凹陷的单元结构而表现出显著的致密化应变,可作为一种有效的能量吸收超材料发挥作用。然而,其有限的高原应力阻碍了能量吸收能力的进一步提高。深海玻璃海绵(GS)因其对角支撑而具有较高的高原应力。受玻璃海绵的启发,我们提出了玻璃海绵辅助结构(GSAS),其特点是通过斜撑加固凹面单元,以实现高原应力和致密化应变。通过有限元分析,设计并比较了不同的结构配置,包括不同的支撑排列和厚度。通过 0.5 毫米的支柱厚度以及交叉和非交叉支撑的非对称布置,实现了最佳的 GSAS。通过选择性激光熔融技术使用 Ti6Al4V 制作了 GSAS,并在压缩试验中与 AS、GS、体心立方体和蜂窝进行了比较。独特的弯曲-拉伸变形和非同时断裂模式使其同时具有较高的高原应力和致密化应变,以及最高的能量吸收率和比能量吸收率。与 AS 相比,这两个值分别提高了 156% 和 75%。GSAS 卓越的能量吸收能力为汽车防撞和减震等领域带来了广阔的前景,其可定制的单元数为更多特定应用提供了可能。
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来源期刊
Journal of Bionic Engineering
Journal of Bionic Engineering 工程技术-材料科学:生物材料
CiteScore
7.10
自引率
10.00%
发文量
162
审稿时长
10.0 months
期刊介绍: The Journal of Bionic Engineering (JBE) is a peer-reviewed journal that publishes original research papers and reviews that apply the knowledge learned from nature and biological systems to solve concrete engineering problems. The topics that JBE covers include but are not limited to: Mechanisms, kinematical mechanics and control of animal locomotion, development of mobile robots with walking (running and crawling), swimming or flying abilities inspired by animal locomotion. Structures, morphologies, composition and physical properties of natural and biomaterials; fabrication of new materials mimicking the properties and functions of natural and biomaterials. Biomedical materials, artificial organs and tissue engineering for medical applications; rehabilitation equipment and devices. Development of bioinspired computation methods and artificial intelligence for engineering applications.
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