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纳米孪晶碳化硼中的超硬度:一项分子动力学研究。

Superhardness in nanotwinned boron carbide: a molecular dynamics study.

作者信息

Shi Liping, Zhang Hongchi, Ma Xiaoliang, Yang Lin, Zhong Yesheng, He Xiaodong

机构信息

Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin 150080, China.

School of Aerospace, Mechanical and Mechatronic Engineering, The University of Sydney, NSW 2006, Australia.

出版信息

Phys Chem Chem Phys. 2023 Jul 26;25(29):19585-19595. doi: 10.1039/d3cp02023a.

Abstract

Boron carbide ceramics are often considered ideal materials for lightweight bulletproof armor, but their anomalous brittle failure at hypervelocity impact limits their use. Recent experiments have reported that nanotwins are ubiquitous in boron carbide and that nanotwinned samples are harder than the twin-free boron carbide, but although the strengthening effect of nanotwins on metals and alloys is well-established, their role in boron carbide ceramics is not well understood. In this study, we used classical molecular dynamics simulations to investigate how nanoscale twins affect the mechanical properties of boron carbide ceramics. Our classical molecular dynamics results show that introducing nanotwins in boron carbide can increase the shear strength limit by 19.72%, reduce the number of amorphized atoms, and narrow the width of the amorphous shear band. Under indentation load, nanotwins can also increase the compressive shear strength limit of boron carbide by 15.97% and change the crystal formation direction and region of the amorphous shear band. These findings suggest that twin boundaries can hinder the expansion of the amorphous shear band and provide a new design idea for improving the impact resistance of boron carbide ceramics and avoiding their abnormal brittle failure.

摘要

碳化硼陶瓷通常被认为是轻质防弹装甲的理想材料,但其在超高速冲击下的异常脆性失效限制了其应用。最近的实验报告称,纳米孪晶在碳化硼中普遍存在,且纳米孪晶化的样品比无孪晶的碳化硼更硬,但是尽管纳米孪晶对金属和合金的强化作用已得到充分证实,它们在碳化硼陶瓷中的作用却尚未得到很好的理解。在本研究中,我们使用经典分子动力学模拟来研究纳米尺度孪晶如何影响碳化硼陶瓷的力学性能。我们的经典分子动力学结果表明,在碳化硼中引入纳米孪晶可使剪切强度极限提高19.72%,减少非晶化原子的数量,并缩小非晶剪切带的宽度。在压痕载荷下,纳米孪晶还可使碳化硼的抗压剪切强度极限提高15.97%,并改变非晶剪切带的晶体形成方向和区域。这些发现表明,孪晶界可阻碍非晶剪切带的扩展,并为提高碳化硼陶瓷的抗冲击性和避免其异常脆性失效提供了一种新的设计思路。

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