波状六手超材料力学性能的可调各向同性:数值模拟和增材制造

IF 0.8 Q4 ENGINEERING, MANUFACTURING Smart and Sustainable Manufacturing Systems Pub Date : 2022-03-29 DOI:10.1142/s2737549822500016
Zhuohong Zeng, Changjun Han, Chenxia Sun, S. Kandukuri, Yilin Zhu, Jiazhao Huang, Q. Wei, Kun Zhou
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引用次数: 0

摘要

六手性增氧超材料可以表现出非常规的负泊松比行为,从而获得优异的力学性能,包括能量吸收和抗压痕性能。波浪状韧带与中心环的厚度比,记为[公式:见文],对六手体结构的各向同性力学性能有重要影响。本工作旨在通过模拟和实验研究[公式:见文]对波浪状六手体结构在拉伸和压缩载荷下各向同性的影响。对[公式:见文]取值范围为0.25 ~ 1.5的六手胞进行了参数化研究。随着[公式:见文]值的减小,变形机制表现为波浪状六手体结构的卷曲性得到改善,韧带变薄,中心环变厚,弯曲变形和旋转变形表现更好。[公式:见文]值为0.33的波浪形六手结构平均有效泊松比最低,为- 0.94,各向异性因子最低,为0.00023。在3.33%拉伸应变和20%压缩应变下,激光增材制造的波状六手性结构的泊松比和变形验证了各向同性的可调性。这些发现为增材制造手性超材料的机械各向同性设计提供了见解。
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Tunable isotropy on the mechanical properties of wavy hexachiral metamaterials: Numerical simulation and additive manufacturing
Hexachiral auxetic metamaterials can exhibit unconventional behaviors of negative Poisson’s ratio that can achieve superior mechanical properties including energy absorption and indentation resistance. The thickness ratio between the wavy ligament and center ring, which is denoted as [Formula: see text], has a critical influence on the isotropic mechanical properties of the hexachiral structures. This work aims to investigate the effect of [Formula: see text] on the isotropic auxeticity of wavy hexachiral structures under tensile and compressive loadings through simulations and experiments. A parametric study on hexachiral unit cells with [Formula: see text] values ranging from 0.25 to 1.5 was conducted with finite element analysis. With a decrease in [Formula: see text] values, the deformation mechanism showed improved coiling of the wavy hexachiral structure with thinner ligaments and thicker center rings, which exhibits better bending and rotational deformations, respectively. The wavy hexachiral structure with the [Formula: see text] value of 0.33 achieved the lowest average effective Poisson’s ratio of −0.94 and anisotropic factor of 0.00023. The tunable isotropic auxeticity is validated by the experimental Poisson’s ratios and deformations of the wavy hexachiral structures fabricated by laser additive manufacturing up to 3.33% tensile strain and 20% compressive strain. These findings provide insights on the design of mechanical isotropy of chiral metamaterials for additive manufacturing.
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来源期刊
Smart and Sustainable Manufacturing Systems
Smart and Sustainable Manufacturing Systems ENGINEERING, MANUFACTURING-
CiteScore
2.50
自引率
0.00%
发文量
17
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