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Quasi-static axial compressive properties and energy absorption of star-triangular auxetic honeycomb

机译:准静态轴向压缩性能和明星三角形耳型蜂窝的能量吸收

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摘要

To systematically and comprehensively investigate the in-plane compression behavior of star-triangular honeycomb (STH) under quasi-static load, a group of specimens were fabricated by additive manufacturing technology and a compression test was carried out. The results show that the deformation of STH is stable, and negative Poisson's ratio (NPR) effect is obvious in the 1-direction. However, this effect is weakened in the 2-direction. Subsequently, numerical simulation models were established to understand the small and large deformation behaviors of STH in detail. In accordance with the deformation mechanism of STH in different directions, theoretical analysis models were developed to predict their elastic modulus and Poisson's ratio, and the results were highly consistent with the numerical simulation results. Detailed parameter analysis shows that the influence of inclined angle theta on the elastic modulus and Poisson's ratio of STH is more obvious than that of t/l. Additionally, with the increase in the inclined angle, the deformation of STH has no obvious difference in the 1-direction while it is considerably different in the 2-direction. When the strain is small, the plateau stress of STH with the same cell-wall angle alpha is similar in different directions. Then, the value of plateau stress and duration of the plateau stage varies greatly with the increase of compression strain. Finally, the energy absorption capacity of STH in different directions was compared. The results show that the energy absorption capacity of STH in the 2-direction is much higher than that in the 1-direction. Furthermore, two energy absorbing stages appear in the compression process of STH, among which the energy contribution of the second stage occupies the largest proportion. This study aims to provide guidelines for the engineering application of STH.
机译:为了在准静载荷下系统地和全面研究星形三角形蜂窝状(STH)的面内压缩行为,通过添加制造技术制造一组样品,并进行压缩试验。结果表明,第1方向,STH的变形稳定,负泊松比(NPR)效应明显。然而,这种效果在两个方向上削弱了。随后,建立了数值模拟模型,详细了解STH的小而大的变形行为。根据不同方向的STH的变形机制,开发了理论分析模型以预测其弹性模量和泊松比,结果与数值模拟结果高度一致。详细的参数分析表明,倾斜角θ对弹性模量和泊松比的STH的比例比T / L更为明显。另外,随着倾斜角度的增加,STH的变形在两个方向上的1方向上没有明显的差异。当应变小时,具有相同细胞壁角α的STH的平台应力在不同方向上类似。然后,随着压缩菌株的增加,平台应力和平台阶段的持续时间变化很大。最后,比较了不同方向上的STH的能量吸收能力。结果表明,两个方向上的STH的能量吸收能力远高于1方向的能量吸收能力。此外,两个能量吸收阶段出现在STH的压缩过程中,其中第二阶段的能量贡献占据最大比例。本研究旨在为某事的工程应用提供指导。

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