三轴拉伸载荷下氧化铝力学性能变化与原子空隙的分子动力学模拟

Junhao Chang, Zengtao Chen, J. Hogan
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摘要

纳米多孔陶瓷的功能化应用于医疗保健和国防,需要研究几何结构对其基本力学性能的影响。然而,在多轴加载条件下,特别是在模型中存在典型空洞的情况下,缺乏对其不同方向刚度和断裂强度的研究。在这项研究中,精确的原子模型和相应的性质被精心选择和验证,以进一步研究。将典型材料的几何和弹性性能与实测结果进行了比较,以确保所选模型的可靠性。通过分子动力学模拟研究了纳米多孔氧化铝在多轴拉伸作用下的力学行为。结果表明:纳米多孔氧化铝陶瓷在单轴拉伸作用下的刚度大于多轴拉伸作用下的刚度,而断裂强度低于多轴拉伸作用下的断裂强度;纳米多孔陶瓷在多轴拉伸作用下的断裂主要表现为孔洞和裂纹扩展、原子键断裂和不同取向的断裂。此外,在不同的初始半径上,增加应变速率对孔隙体积分数的影响是相似的。增大拉伸加载速率对降低断裂应变有较大的作用。这些发现为纳米多孔陶瓷在复杂加载状态下的断裂机制提供了更多的见解,也有助于未来更高尺度模型的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular Dynamics Simulations Correlating Mechanical Property Changes of Alumina with Atomic Voids under Triaxial Tension Loading
The functionalization of nanoporous ceramics for applications in healthcare and defence necessitates the study of the effects of geometric structures on their fundamental mechanical properties. However, there is a lack of research on their stiffness and fracture strength along diverse directions under multi-axial loading conditions, particularly with the existence of typical voids in the models. In this study, accurate atomic models and corresponding properties were meticulously selected and validated for further investigation. Comparisons were made between typical material geometric and elastic properties with measured results to ensure the reliability of the selected models. The mechanical behavior of nanoporous alumina under multiaxial stretching was explored through molecular dynamics simulations. The results indicated that the stiffness of nanoporous alumina ceramics under uniaxial tension was greater, while the fracture strength was lower compared to that under multiaxial loading. The fracture of nanoporous ceramics under multi-axial stretching, was mainly dominated by void and crack extension, atomic bond fracture, and cracking with different orientations. Furthermore, the effects of increasing strain rates on the void volume fraction were found to be similar across different initial radii. It was also found that the increasing tension loading rates had greater effects on decreasing the fracture strain. These findings provide additional insight into the fracture mechanisms of nanoporous ceramics under complex loading states, which can also contribute to the development of higher-scale models in the future.
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