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Graphynes: an alternative lightweight solution for shock protection

机译:Graphynes:防震的另一种轻便解决方案

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摘要

The excellent mechanical properties of graphyne (GY) have made it an appealing candidate in the field of impact protection. We assessed the deformation mechanisms of monolayer GY nanosheets of different morphologies, including α-GY, β-GY, γ-GY and 6612-GY, under supersonic-velocity impacts (from 1 to 6 km/s) based on in silico studies. Generally, cracks initiate at the geometry center and the nanosheet experiences significant out-of-plane deformation before the propagation of cracks. Tracking the atomic von Mises stress distribution, it is found that its cumulative density function has a strong correlation with the magnitude of the Young’s modulus of the GYs. For nanosheets with a higher Young’s modulus, it tends to transfer momentum at a faster rate. Thus, a better energy dissipation or delocalization is expected during impact. This study provides a fundamental understanding of the deformation and penetration mechanisms of monolayer GY nanosheets under impact, which is crucial in order to facilitate their emerging applications for impact protection.
机译:石墨烯(GY)的出色机械性能使其成为冲击防护领域的理想之选。我们基于计算机模拟研究,评估了在超声速(从1 km到6 km / s)的超声速冲击下,不同形态的单层GY纳米片的变形机制,包括α-GY,β-GY,γ-GY和6612-GY。通常,裂纹始于几何中心,纳米片在裂纹扩展之前经历了明显的面外变形。跟踪原子von Mises应力分布,发现其累积密度函数与GY的杨氏模量的大小具有很强的相关性。对于杨氏模量较高的纳米片,它倾向于以更快的速度传递动量。因此,在撞击过程中预期会有更好的能量消散或离域。这项研究提供了对单层GY纳米片在冲击下的变形和渗透机理的基本理解,这对于促进其新兴的冲击防护应用至关重要。

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