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首页> 外文期刊>Journal of Materials Science >Atomic-scale study of compositional and structural evolution of early-stage grain boundary precipitation in Al-Cu alloys through phase-field crystal simulation
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Atomic-scale study of compositional and structural evolution of early-stage grain boundary precipitation in Al-Cu alloys through phase-field crystal simulation

机译:基于相场晶体模拟的Al-Cu合金早期晶界沉淀的组成和结构演化的原子尺度研究

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摘要

Interfacial solute clustering is an essential step preceding grain boundary (GB) precipitation. Both states, i.e., clusters and precipitates, alter the mechanical, chemical, and corrosion properties of materials. Continuum models cannot capture the atomic details of these phenomena, specifically of the transition from clustering to precipitation. We thus use the structural phase-field crystal (XPFC) model to study the compositional and structural evolution during GB clustering in Al-Cu alloys. The results show that the compositional evolution is dominated by solute segregation to lattice defects at the very beginning and then by confined spinodal decomposition along the GBs. The latter leads to a steep increase in the concentration and then the formation of disordered clusters. This structure acts as a precursor for phase nucleation, just like the decomposed solid solution, and Guinier-Preston zones are the precursors of the thermodynamically stable Al2Cu phase in the interior of grains. Two modes of spinodal decomposition are found. (a) On low-angle tilt GBs, spinodal decomposition occurs at the dislocations that constitute the GB. (b) On high-angle tilt GBs, spinodal decomposition takes place inside the entire GB plane. In either case, the structural transition from the disordered low-dimensional precursor states to an ordered phase state takes place following the compositional enrichment. These results shed light on atomic-scale early-stage GB decomposition and precipitation processes in Al-Cu alloys and enrich our knowledge about the coupling effects between compositional and structural evolution during GB phase transformation phenomena.
机译:界面溶质聚集是晶界沉淀之前的一个重要步骤。这两种状态,即团簇和沉淀,都会改变材料的机械、化学和腐蚀性能。连续统模型无法捕捉这些现象的原子细节,特别是从聚集到降水的过渡。因此,我们使用结构相场晶体(XPFC)模型来研究Al-Cu合金中GB聚集过程中的成分和结构演变。结果表明,晶体成分的演化首先是溶质向晶格缺陷的偏析,然后是沿晶界的受限旋节分解。后者导致浓度急剧增加,然后形成无序团簇。这种结构就像分解的固溶体一样,是相形核的前驱体,而吉尼尔-普雷斯顿区是晶粒内部热力学稳定的Al2Cu相的前驱体。发现了两种调幅分解模式。(a) 在低角度倾斜的晶界上,构成晶界的位错发生旋节分解。(b) 在大角度倾斜GBs上,调幅分解发生在整个GB平面内。在这两种情况下,从无序低维前体状态到有序相状态的结构转变都发生在成分富集之后。这些结果揭示了Al-Cu合金中原子尺度的早期GB分解和沉淀过程,丰富了我们对GB相变过程中成分和结构演化耦合效应的认识。

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  • 来源
    《Journal of Materials Science》 |2021年第22期|共16页
  • 作者单位

    Cent South Univ State Key Lab Powder Met Changsha 410083 Hunan Peoples R China;

    Northwestern Polytech Univ State Key Lab Solidificat Proc Youyi Western Rd 127 Xian 710072 Peoples R China;

    Cent South Univ State Key Lab Powder Met Changsha 410083 Hunan Peoples R China;

    Cent South Univ Natl Key Lab Sci &

    Technol High Strength Struct M Changsha 410083 Peoples R China;

    Cent South Univ State Key Lab Powder Met Changsha 410083 Hunan Peoples R China;

    Cent South Univ State Key Lab Powder Met Changsha 410083 Hunan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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