材料科学
体积分数
纳米颗粒
合金
奥斯特瓦尔德成熟
动力学
降水
纳米复合材料
位错
相(物质)
扩散
化学工程
惰性
微晶
陶瓷
冶金
纳米技术
复合材料
热力学
化学
工程类
物理
气象学
有机化学
量子力学
作者
Simbarashe Fashu,Binting Huang,Nan Wang
出处
期刊:Metals
[MDPI AG]
日期:2022-05-24
卷期号:12 (6): 892-892
被引量:6
摘要
Precipitate coarsening is a major mechanism responsible for the degradation in mechanical properties of many precipitation-hardened alloys at high temperatures. With recent developments in processing of nanocomposite materials, a substantial volume fraction of inert second phase ceramic nanoparticles can be introduced into the grain interiors of polycrystalline materials. These intragranular nanoparticles can have synergistic effects of impeding dislocation motion and interacting with coarsening precipitates to modify the coarsening rate. In this work, the precipitate coarsening behavior of an alloy in the presence of intragranular inert nanoparticles was studied using the phase field method. Two key measurements of coarsening kinetics, precipitate size distribution and coarsening rate, were found to be affected by the volume fraction and the size of nanoparticles. Two novel mechanisms related to geometric constraints imposed by inter-nanoparticle distance and the blockage of solute diffusion path by nanoparticle–matrix interfaces were proposed to explain the observed changes in precipitate coarsening kinetics. The simulation results in general suggest that the use of small nanoparticles with large number density is effective in slowing down the coarsening kinetics.
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