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首页> 外文期刊>International Journal of Fracture >Interatomic potentials and the simulation of fracture: C15 NbCr2
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Interatomic potentials and the simulation of fracture: C15 NbCr2

机译:C15 NbCr2的原子间电势和断裂模拟

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The discrete nature of solids and the interatomic interactions strongly influence crack propagation. Lattice trapping results in stable cracks above and below the critical Griffith load. Local atomic arrangements near the crack front define fracture behaviour. The analysis of these processes on an atomic scale helps to understand principle mechanisms and their consequences, which also have to be incorporated in more coarse-grained descriptions to get reliable results. Large-scale molecular dynamics simulations of fracture on the atomic level can supply information not accessible to experiment. But to simulate a specific material reasonable effective interatomic potentials are needed. In this paper, we report on the fitting and validation of potentials specifically generated for the fracture of C15 NbCr2. Results are compared to those derived with potentials for the elements from the literature. The comparison indicates that interactions fitted to elemental metals are not sufficient to determine alloy properties.
机译:固体的离散性质和原子间相互作用强烈影响裂纹扩展。晶格截留导致在临界格里菲斯载荷之上和之下的稳定裂纹。裂纹前沿附近的局部原子排列确定了断裂行为。对这些过程的原子级分析有助于理解其原理机理及其后果,为了获得可靠的结果,还必须将其纳入更粗粒度的描述中。原子级断裂的大规模分子动力学模拟可以提供实验无法获得的信息。但是要模拟特定的材料,需要合理的有效原子间势。在本文中,我们报告了C15 NbCr2断裂专门产生的电势的拟合和验证。将结果与有潜力的文献中的结果进行比较。比较表明,与元素金属的相互作用不足以确定合金性能。

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