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二元Ni-Al合金极端条件下的弹性和热力学性能:全电子准谐波近似
引用本文:罗永松,仓玉萍,陈东.二元Ni-Al合金极端条件下的弹性和热力学性能:全电子准谐波近似[J].化学物理学报(中文版),2014,27(4):399-406.
作者姓名:罗永松  仓玉萍  陈东
作者单位:信阳师范学院物理电子工程学院,信阳464000
基金项目:V. ACKNOWLEDGEMENTS This work was supported by the National Natural Science Foundation of China (No.U1204501, No.11304141, No.11105115). We thank Prof. Alberto Qtero-de-laRoza and his colleague for the FEQHA model (Gibbs2 code). We also acknowledge Prof. M. A. Blanco and his co-workers for their QHD model (Gibbs code).
摘    要:通过在原子尺度上建模来研究Al、NiAl和Ni3Al合金在极端高温和高压下的点阵常数、弹性常数、弹性模量、泊松比和弹性各向异性因子等性质.计算得到的弹性常数均满足相应的力学稳定条件.由于NiAl和Ni3Al具有较高的B/G值,在0~30GPa内都属于延展性材料.通过包含电子热运动对体系吉布斯自由能贡献的全电子准谐近似方法,得到了高温高压下Al、NiAl和Ni3Al合金的热膨胀系数、体积模量、热容和熵等.计算值与已有的实验值和理论值符合较好.

关 键 词:第一性原理  热容  体积模量  德拜近似
收稿时间:2014-04-27

Insights into Elastic and Thermodynamics Properties of Binary Intermetallics in Ni-Al Alloys under Extreme Condition: Full-Electronic Quasi-Harmonic Study (cited: 1)
Yong-song Luo,Yu-ping Cang,Dong Chen.Insights into Elastic and Thermodynamics Properties of Binary Intermetallics in Ni-Al Alloys under Extreme Condition: Full-Electronic Quasi-Harmonic Study (cited: 1)[J].化学物理学报(中文版),2014,27(4):399-406.
Authors:Yong-song Luo  Yu-ping Cang  Dong Chen
Institution:College of Physics and Electronic Engineering, Xinyang Normal University, Xinyang 464000
Abstract:Atomistic modeling based on the accurate first-principles method is used to investigate the lattice parameter, elastic constant, elastic modulus including bulk modulus (B) and shear modulus (G), Poisson's ratio, and elastic anisotropy of Al, NiAl and NiaAl under extreme condition. The elastic constants obtained from calculations meet their mechanical stability criteria. Both NiAl and Ni3Al exhibit ductile behavior due to their high bulk mudulus to shear modulus ratios of B/G ratios. Through the full-electronic quasi-harmonic approximation, in which the mobile electrons are considered, we successfully obtain the thermo-physical properties including the thermal expansion coefficient, bulk modulus, heat capacity and entropy at simultaneously high temperatures and high pressures. The calculated quantities agree well with the available results. Some silent results are also interpreted. Several interesting features in the thermodynamic properties can also be observed.
Keywords:First-principles  Heat capacity  Bulk modulus  Debye approximation
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