Vo Truong, Reeder Brett, Damone Angelo, Newell Pania
Department of Mechanical Engineering, The University of Utah, UT 84112, USA.
Department of Mechanical and Process Engineering, Technical University of Kaiserslautern, 67663 Kaiserslautern, Germany.
Nanomaterials (Basel). 2019 Dec 25;10(1):54. doi: 10.3390/nano10010054.
Mechanical properties are very important when choosing a material for a specific application. They help to determine the range of usefulness of a material, establish the service life, and classify and identify materials. The size effect on mechanical properties has been well established numerically and experimentally. However, the role of the size effect combined with boundary and loading conditions on mechanical properties remains unknown. In this paper, by using molecular dynamics (MD) simulations with the state-of-the-art ReaxFF force field, we study mechanical properties of amorphous silica (e.g., Young's modulus, Poisson's ratio) as a function of domain size, full-/semi-periodic boundary condition, and tensile/compressive loading. We found that the domain-size effect on Young's modulus and Poisson's ratio is much more significant in semi-periodic domains compared to full-periodic domains. The results, for the first time, revealed the and anisotropic nature of amorphous silica at the atomic level. We also defined a "safe zone" regarding the domain size, where the bulk properties of amorphous silica can be reproducible, while the computational cost and accuracy are in balance.
在为特定应用选择材料时,力学性能非常重要。它们有助于确定材料的使用范围,确定使用寿命,并对材料进行分类和识别。尺寸对力学性能的影响已在数值和实验上得到充分证实。然而,尺寸效应与边界条件和加载条件相结合对力学性能的作用仍然未知。在本文中,我们使用具有最先进ReaxFF力场的分子动力学(MD)模拟,研究非晶硅的力学性能(如杨氏模量、泊松比)与畴尺寸、全/半周期边界条件以及拉伸/压缩加载的关系。我们发现,与全周期畴相比,半周期畴中畴尺寸对杨氏模量和泊松比的影响要大得多。这些结果首次在原子水平上揭示了非晶硅的各向异性本质。我们还定义了一个关于畴尺寸的“安全区”,在该区内非晶硅的体相性质可以重现,同时计算成本和精度保持平衡。