Tailored energy absorption for a novel auxetic honeycomb structure under large deformation

IF 6.4 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Science China Physics, Mechanics & Astronomy Pub Date : 2024-04-12 DOI:10.1007/s11433-023-2311-3
Xiuhui Hou, Bin Wang, Zichen Deng
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Abstract

In comparison to conventional hexagonal honeycomb structures, auxetic metamaterials with re-entrant configurations have exhibited superior mechanical properties in terms of energy absorption. To further enhance the energy absorption capacity of these materials, a novel re-entrant honeycomb configuration, named novel auxetic re-entrant honeycomb (NARH), is developed by incorporating “<>”-shaped cell walls into the conventional auxetic re-entrant honeycomb (ARH). Two analytical models for the plateau stress are formulated to consider the plastic deformation of NARH during quasi-static compression and the dynamic impact using the linear momentum theorem. Quasi-static compression tests on 3D printed NARH honeycomb specimens and finite element simulations are performed to verify the effectiveness of the theoretical models. NARH exhibits higher plateau stresses compared with ARH during compression, which can be attributed to the presence of more plastic hinges formed in NARH. These hinges, the embedded parts with inclined cell walls, not only improve stability by forming stable triangles during compression but also enhance the energy absorption capacity. A parametric study is conducted to analyze the effect of impact velocity, thickness, and incline angle of cell walls on crashworthiness. Numerical simulations demonstrate higher sensitivity of the mechanical properties to impact velocity and cell wall thickness. Adding ribs to the “<>”-shaped cell walls in NARH further reduces the initial peak force during dynamic crushing while maintaining high energy absorption. The research provides valuable guidelines for the design of energy absorption metamaterials.

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大变形下新型辅助蜂窝结构的定制能量吸收
与传统的六边形蜂窝结构相比,具有重入式结构的辅助超材料在能量吸收方面表现出更优越的机械特性。为了进一步提高这些材料的能量吸收能力,我们在传统的辅助再入蜂窝(ARH)中加入了"<> "形细胞壁,从而开发出一种新型再入蜂窝结构,并将其命名为新型辅助再入蜂窝(NARH)。利用线性动量定理建立了两个高原应力分析模型,以考虑 NARH 在准静态压缩和动态冲击过程中的塑性变形。对 3D 打印的 NARH 蜂窝试样进行了准静态压缩试验,并进行了有限元模拟,以验证理论模型的有效性。与 ARH 相比,NARH 在压缩过程中表现出更高的高原应力,这可归因于 NARH 中存在更多的塑性铰链。这些铰链是具有倾斜细胞壁的嵌入部分,不仅能在压缩过程中形成稳定的三角形,从而提高稳定性,还能增强能量吸收能力。参数研究分析了撞击速度、厚度和细胞壁倾斜角度对耐撞性的影响。数值模拟结果表明,机械性能对撞击速度和电池壁厚度的敏感性更高。在 NARH 的"<> "形电池壁上添加肋条可进一步降低动态挤压过程中的初始峰值力,同时保持高能量吸收。这项研究为能量吸收超材料的设计提供了宝贵的指导。
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来源期刊
Science China Physics, Mechanics & Astronomy
Science China Physics, Mechanics & Astronomy PHYSICS, MULTIDISCIPLINARY-
CiteScore
10.30
自引率
6.20%
发文量
4047
审稿时长
3 months
期刊介绍: Science China Physics, Mechanics & Astronomy, an academic journal cosponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and published by Science China Press, is committed to publishing high-quality, original results in both basic and applied research. Science China Physics, Mechanics & Astronomy, is published in both print and electronic forms. It is indexed by Science Citation Index. Categories of articles: Reviews summarize representative results and achievements in a particular topic or an area, comment on the current state of research, and advise on the research directions. The author’s own opinion and related discussion is requested. Research papers report on important original results in all areas of physics, mechanics and astronomy. Brief reports present short reports in a timely manner of the latest important results.
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