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Atomistic Simulations of Carbon Diffusion and Segregation in α-Iron Grain Boundaries

机译:α-铁晶界中碳扩散与偏析的原子模拟

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Polycrystalline materials' mechanical properties and failure modes depend on many factors that include segregation of different alloying elements as well as its grain boundaries (GBs) structure. Understanding the parameters affecting the diffusion and binding of alloying elements within GBs will allow enhancing the mechanical properties of the commercial engineering materials and developing interface dominant materials. In practice, the coincidence site lattice (CSL) GBs are experiencing deviations from their ideal configurations. Consequently, this will change the atomic structural integrity by superposition of sub-boundary dislocation networks on the ideal CSL interfaces. For this study, ideal Σ3 GB structures and their angular deviations in BCC iron within the range of Brandon criterion will be studied comprehensively using molecular statics (MS) simulations. GB segregation energy and free surface segregation energies are calculated for carbon atoms. Rice-Wang model will be used to assess the embrittlement impact variation over the deviation angles.
机译:多晶材料的机械性能和失效模式取决于许多因素,包括不同合金元素的偏析以及其晶界(GBS)结构。理解影响GBS内的合金元素的扩散和结合的参数将允许提高商业工程材料的机械性能和显影界面显性材料。在实践中,巧合点晶格(CSL)GBS正在经历与其理想配置的偏差。因此,这将通过在理想的CSL接口上叠加子边界位错网络来改变原子结构完整性。对于本研究,将在Brandon标准范围内全面研究理想的σ3GB结构及其在BCC Iron内的角度偏差,使用分子静验(MS)模拟。 GB偏析能量和自由表面偏析能量用于碳原子。稻王模型将用于评估偏差角度的脆化抗冲变化。

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