Yang Wenkui, Guo Qingwei, Wang Kaile, Lei Pengya, Hou Hua, Zhao Yuhong
School of Materials Science and Engineering, Collaborative Innovation Center of Ministry of Education and Shanxi Province for High-Performance Al/Mg Alloy Materials, North University of China, Taiyuan, 030051, People's Republic of China.
A School of Materials Science and Engineering, Taiyuan University of Science and Technology, Taiyuan, 030024, People's Republic of China.
Sci Rep. 2024 Jun 4;14(1):12767. doi: 10.1038/s41598-024-63632-5.
Both irradiation and dislocations have been proposed as routes to rationally manipulate spatial distribution and micromorphology of precipitate. An interesting effect emerges in Fe-10at.%Cu-3at.%Mn-1.5at.%Ni-1.5at.%Al alloy due to the synergistic-competitive roles of dislocation loop and irradiation. Base on cascade mixing, vacancy-interstitial atoms and dislocation stress field model, we examine nucleation and growth dynamics of Cu-rich precipitates, where both dislocation loop and irradiation act in conjunction. Analytical treatments identify regimes, where the distribution of elements and point defects due to irradiation and dislocations are specific to the Cu-rich precipitates. Simulation results reveal that density, size and distribution of Cu-rich precipitates are a manifestation of the competing effects of the dislocation loop and the irradiation rate. More specifically, the dislocation loop preferentially assists the formation of precipitates and new dislocations at lower irradiation rates. Only the irradiation induces the formation of Cu-rich precipitates with the irradiation rate continues to increase. Equipped with molecular dynamics, where reproduces major interaction features of the solutes with point defects under displacement cascade, can verify multi-component morphologies of Cu-rich precipitates. This modeling framework provides an avenue to explore the role of dislocation loop and irradiation on the microstructural evolution of Cu-rich precipitates.
辐照和位错都被认为是合理控制析出相空间分布和微观形态的途径。由于位错环和辐照的协同竞争作用,在Fe-10at.%Cu-3at.%Mn-1.5at.%Ni-1.5at.%Al合金中出现了一个有趣的效应。基于级联混合、空位-间隙原子和位错应力场模型,我们研究了富铜析出相的形核和生长动力学,其中位错环和辐照共同起作用。分析处理确定了一些区域,在这些区域中,由于辐照和位错导致的元素和点缺陷分布对于富铜析出相具有特异性。模拟结果表明,富铜析出相的密度、尺寸和分布是位错环和辐照速率竞争效应的体现。更具体地说,在位错环优先辅助析出相和新位错形成的较低辐照速率下,只有当辐照速率持续增加时,辐照才会诱导富铜析出相的形成。借助分子动力学,其再现了位移级联下位溶质与点缺陷的主要相互作用特征,可以验证富铜析出相的多组分形态。这个建模框架为探索位错环和辐照对富铜析出相微观结构演变的作用提供了一条途径。