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Stability and crystal structures of iron carbides: A comparison between the semi-empirical modified embedded atom method and quantum-mechanical DFT calculations

机译:碳化铁的稳定性和晶体结构:半经验改进的嵌入原子方法与量子力学DFT计算的比较

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摘要

Iron carbides play a crucial role in steel manufacturing and processing and to a large extent determine the physical properties of steel products. The modified embedded atom method (MEAM) in combination with Lee's Fe-C potential is a good candidate for molecular dynamics simulations on larger Fe-C systems. Here, we investigate the stability and crystal structures of pure iron and binary iron carbides using MEAM and compare them with the experimental data and quantum-mechanical density functional theory calculations. The analysis shows that the Fe-C potential gives reasonable results for the relative stability of iron and iron carbides. The performance of MEAM for the prediction of the potential energy and the calculated lattice parameters at elevated temperature for pure iron phases and cementite are investigated as well. The conclusion is that Lee's MEAM Fe-C potential provides a promising basis for further molecular dynamics simulations of Fe-C alloys and steels at lower temperatures (up to 800 K).
机译:碳化铁在钢铁制造和加工中起着至关重要的作用,并在很大程度上决定了钢铁产品的物理性能。改进的嵌入原子方法(MEAM)与Lee的Fe-C势相结合是在较大的Fe-C系统上进行分子动力学模拟的很好的选择。在这里,我们使用MEAM研究纯铁和二元碳化铁的稳定性和晶体结构,并将其与实验数据和量子力学密度泛函理论计算进行比较。分析表明,Fe-C势为铁和碳化铁的相对稳定性提供了合理的结果。还研究了MEAM在预测纯铁相和渗碳体在高温下的势能和计算出的晶格参数的性能。结论是Lee的MEAM Fe-C潜力为在较低温度(最高800 K)下对Fe-C合金和钢进行进一步的分子动力学模拟提供了有希望的基础。

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