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首页> 外文期刊>RSC Advances >Local structural evolution of Fe54C18Cr16Mo12 bulk metallic glass during tensile deformation and a temperature elevation process: a molecular dynamics study
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Local structural evolution of Fe54C18Cr16Mo12 bulk metallic glass during tensile deformation and a temperature elevation process: a molecular dynamics study

机译:FE54C18CR16MO12散装金属玻璃局部结构演变在拉伸变形和温度升高过程中:分子动力学研究

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摘要

The mechanical and thermal properties of Fe54C18Cr16Mo12 bulk metallic glasses (BMGs) were investigated by a molecular dynamics simulation with the 2NN modified embedded-atom method (MEAM) potential. The fitting process of the cross-element parameters of 2NN MEAM (Fe-C, Fe-Cr, Fe-Mo, C-Cr, C-Mo, and Cr-Mo) was carried out first by the force matching method (FMM) on the basis of the reference data from density functional theory (DFT) calculations. With these fitted parameters, the structure of Fe54C18Cr16Mo12 BMG was constructed by the simulated-annealing basin-hopping (SABH) method, and the angle distribution range of the X-ray diffraction profile of the predicted Fe54C18Cr16Mo12 BMG closely matches that of the experiment profile, indicating the fitted 2NN MEAM parameters can accurately reflect the interatomic interactions of Fe54C18Cr16Mo12 BMG. The Honeycutt-Andersen (HA) index analysis results show a significant percentage of icosahedral-like structures within Fe54C18Cr16Mo12 BMG, which suggests an amorphous state. According to the tensile test results, the estimated Young's modulus of Fe54Cr16Mo12C18 bulk metallic glass is about 139 GPa and the large plastic region of the stress-strain curve shows that the Fe54C18Cr16Mo12 BMG possesses good ductility. Local strain distribution was used to analyze the deformation mechanism, and the results show that a shear band develops homogeneously with the tensile fracture angle (theta(T)) at about 50 degrees, in agreement with experimental results 45 degrees < theta(T) < 90 degrees. For the temperature elevation results, the discontinuity of the enthalpy-temperature profile indicates the melting point of Fe54Cr16Mo12C18 BMG is about 1310 K. The diffusion coefficients near the melting point were derived by the Einstein equation from the mean-square-displacement (MSD) profiles between 800-1400 K. On the basis of diffusion coefficients at different temperatures, the diffusion barriers of Fe54Cr16Mo12C18 can be determined by the Arrhenius equation. The diffusion barriers of total for Fe, Cr, Mo, C are 31.88, 24.68, 35.26, 22.50 and 31.79 kJ mol (-1), respectively. The diffusion barriers of Fe and Cr atoms are relatively lower, indicating Fe and Cr atoms more easily diffuse with the increasing temperature.
机译:Fe54C18Cr16Mo12的机械和热性能批量通过分子动力学模拟与2NN改性嵌入原子方法(MEAM)潜在金属玻璃(非晶合金)进行了调查。 2NN MEAM(FE-C,Fe-Cr系,铁钼,C-的Cr,C-Mo和铬钼)的横元件参数的适配过程是由力匹配方法首先进行(FMM)从密度泛函理论(DFT)计算基准数据的基础上。与这些拟合参数,Fe54C18Cr16Mo12 BMG的结构是由模拟韧盆跳频(SABH)方法构造,和预测Fe54C18Cr16Mo12 BMG的X射线衍射曲线的角分布范围紧密匹配,实验轮廓,指示拟合2NN MEAM参数可以准确地反映Fe54C18Cr16Mo12 BMG的原子间相互作用。所述哈尼科特 - 安德森(HA)指数分析结果显示的显著百分比二十面体状Fe54C18Cr16Mo12 BMG,这表明无定形状态内的结构。根据拉伸试验的结果,Fe54Cr16Mo12C18的估计的杨氏模量块状金属玻璃为约139 GPA和的应力 - 应变曲线示出了Fe54C18Cr16Mo12 BMG具有良好的延展性大塑性区域。局部应变分布用于分析变形机制,结果表明,剪切带在约50度,有拉伸断裂角度(希塔(T))均匀地发展,在协议与实验结果45度

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  • 来源
    《RSC Advances 》 |2015年第126期| 共11页
  • 作者单位

    Chinese Culture Univ Inst Appl Chem Dept Chem Taipei 111 Taiwan;

    Kaohsiung Chang Gung Mem Hosp Inst Translat Res Biomed Kaohsiung 833 Taiwan;

    Natl Sun Yat Sen Univ Dept Mech &

    Electromech Engn Kaohsiung 804 Taiwan;

    Natl Sun Yat Sen Univ Dept Mech &

    Electromech Engn Kaohsiung 804 Taiwan;

    Chung Yuan Christian Univ Dept Chem Chungli 32023 Taiwan;

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  • 正文语种 eng
  • 中图分类 化学 ;
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