Microscopic phase-field simulation for the effect of the fourth-nearest pair potentials on precipitation mechanism of Ni75Al5V20 alloy

Huihui Zhen, Yongxin Wang, Zheng Chen, Jing Zhang, Mingyi Zhang, Jinliang Huo

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3 Scopus citations

Abstract

The effect of the fourth-nearest pair potentials on the precipitation mechanism of Ni75Al5V20 alloy is studied using a microscopic phase-field kinetic equation. Our simulations demonstrate that both DO22 phase and Ll2 phase have a mixed precipitation mechanism of non-classical nucleation growth and spinodal decomposition without changing the fourth-nearest pair potentials. When the absolute value of the fourth-nearest pair potential between Ni and Al (namely V4Ni-Al, negative) increases, the precipitation mechanism of Ll2 phase becomes spinodal decomposition. And when the fourth-nearest pair potential between Ni and V (namely V4Ni-V) increases, the precipitation mechanism of DO22 phase is spinodal decomposition, the Ll2 phase is non-classical nucleation and the Al concentration in Ll2 phase gains. When the absolute value of the negative V4Ni-V increases, the mechanism is similar to the increase of V4Ni-V; when the positive V4Ni-V increases, the mechanism is similar to the decrease of V4Ni-V.

Original languageEnglish
Pages (from-to)286-290
Number of pages5
JournalXiyou Jinshu Cailiao Yu Gongcheng/Rare Metal Materials and Engineering
Volume38
Issue number2
StatePublished - Feb 2009

Keywords

  • Microscopic phase-field
  • NiAlV alloy
  • Pair potential
  • Precipitation mechanism

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