首页> 外文会议>Asia-Pacific Symposium on Engineering Plasticity and Its Applications;AEPA; 20060925-29;20060925-29; Nagoya(JP);Nagoya(JP) >Molecular Dynamics Analysis on Crack Growth Behavior in Single and Nano-crystalline Fe by the Use of FS-2NNMEAM Hybrid Potential
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Molecular Dynamics Analysis on Crack Growth Behavior in Single and Nano-crystalline Fe by the Use of FS-2NNMEAM Hybrid Potential

机译:利用FS-2NNMEAM杂化势分析单晶和纳米铁中裂纹扩展行为的分子动力学

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In recent years, nano-crystalline materials have attracted many researchers' attention, but the fracture mechanism has not been fully clarified. In a molecular dynamics (MD) simulation, grain size and crystal orientation can be chosen, and their effects on the mechanical properties of nano-crystalline materials can be evaluated clearly. This research first compares the results of crack growth behavior in single crystalline Fe for three typical interatomic potentials (Embedded Atom Method (EAM), Finnis Sinclair (FS), and Second Nearest Neighbor Modified EAM (2NNMEAM) potentials) and a Hybrid potential method, which uses FS potential for bcc structure atoms and 2NNMEAM potential for non-bcc structure atoms. The 2NNMEAM potential is accurate, but the computation time is dozens of times that of FS potential, which is the simplest of the three interatomic potentials. Therefore, the 2NNMEAM potential requires too much calculation for the purpose of this research that analyzes the crack growth behavior in nano-crystalline metals. Flowever, Hybrid potential is able to give results similar to those of the 2NNMEAM potential, and the calculation time is close to that of the FS potential. From these results, the crack extension behavior in relatively large nano-crystalline models is analyzed using the Hybrid potential, and we demonstrate the grain-size dependency of the fracture behavior.
机译:近年来,纳米晶体材料引起了许多研究者的关注,但断裂机理尚未完全阐明。在分子动力学(MD)模拟中,可以选择晶粒尺寸和晶体取向,并且可以清楚地评估它们对纳米晶体材料机械性能的影响。这项研究首先比较了三种典型原子间电势(嵌入式原子方法(EAM),芬尼斯·辛克莱(FS)和第二近邻改性EAM(2NNMEAM)势)和混合势方法在单晶铁中的裂纹扩展行为的结果,它对密件抄送结构原子使用FS势,对非密件抄送结构原子使用2NNMEAM势。 2NNMEAM电势是准确的,但计算时间是FS电势的数十倍,这是三个原子间电势中最简单的。因此,对于本研究分析纳米晶体金属中裂纹扩展行为的研究而言,2NNMEAM势需要太多的计算。流动的混合势能产生与2NNMEAM势相似的结果,并且计算时间接近于FS势。从这些结果,使用混合电位分析了相对较大的纳米晶体模型中的裂纹扩展行为,并且我们证明了断裂行为的晶粒尺寸依赖性。

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