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Engulfment and distribution of second-phase nanoparticle during dendrite solidification of an Al-Si binary alloy: a simulation study

机译:Al-Si二元合金树突凝固过程中第二阶段纳米粒子的吞噬和分布:模拟研究

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摘要

To achieve optimum strengthening effects of external nanoparticles (NPs), uniform dispersion of NPs in the melt is necessary for the casting manufacturing of metal matrix nanocomposites in which dislocation-based strengthening mechanisms play a significant role. However, the engulfment of nanoparticles within the solidifying grains and the avoidance of pushing them outside the solidification front are always a major challenge. Therefore, the understanding of local interface velocity and interface/particle dynamics during alloy solidification is of significant importance. Existing numerical studies on particle engulfment/pushing do not take into consideration the anisotropy of crystal growth and assume planar solidification interface, and thus they are unable to obtain the nanoparticle distribution in realistic alloy solidification. In this research, we investigate the engulfment/push behavior and the overall distribution of SiO2 nanoparticles in the dendrite solidification of an Al-Si binary alloy. Phase-field method is used to simulate the dendrite growth and to predict local solidification front velocity. In combination with the critical engulfment velocity obtained from a non-steady-state particle/front interaction model, the engulfment/push behavior of the entire solidification domain as well as the final distribution of nanoparticles can be analyzed. It is found that the distribution pattern of NPs obtained from simulation is overall consistent with the limited experimental results in the literature. In addition, the two main dislocation-based strengthening effects, e.g., Orowan bowing and CTE (coefficient of thermal expansion) mismatch strengthening, brought by external nanoparticles are quantitatively predicted. The degree of undercooling (60, 80, and 100K) and nanoparticle size (10, 20, 30, 40, and 50nm) are varied to investigate their influence on the NP engulfment behavior and the resulted strengthening effects.
机译:为了实现外部纳米颗粒(NPS)的最佳强化效果,对于金属基质纳米复合材料的铸造制造,NPS在熔体中的均匀分散是必要的,其中基于位错的强化机制起着重要作用。然而,凝固晶粒内的纳米颗粒吞噬以及避免将它们推到凝固前面的避免始终是一个重大挑战。因此,在合金凝固过程中对局部界面速度和界面/粒子动力学的理解具有重要意义。对粒子嘴/推动的现有数值研究不考虑晶体生长的各向异性并假设平面凝固界面,因此它们不能获得现实合金凝固中的纳米颗粒分布。在该研究中,我们研究了Al-Si二元合金的树突凝固中SiO2纳米颗粒的吞噬/推动行为和总分布。相场方法用于模拟树突生长并预测局部凝固前速度。结合从非稳态粒子/前相互作用模型获得的临界吞噬速度,可以分析整个凝固结构域的嘴/推动行为以及纳米颗粒的最终分布。结果发现,从模拟中获得的NP的分布模式总体上与文献中的有限实验结果一致。此外,定量预测外部纳米颗粒带来的两个主要位错的强化效果,例如orowan弯曲和CTE(热膨胀系数)不匹配强化。多余的过冷(60,80和100k)和纳米颗粒尺寸(10,20,30,40和50nm)的变化程度以研究它们对NP嘴嘴行为的影响和所得到的强化效果。

著录项

  • 来源
    《Applied Physics》 |2019年第6期|449.1-449.12|共12页
  • 作者

    Wang Yachao; Shi Jing;

  • 作者单位

    Univ Cincinnati Dept Mech & Mat Engn Coll Engn & Appl Sci Cincinnati OH 45221 USA;

    Univ Cincinnati Dept Mech & Mat Engn Coll Engn & Appl Sci Cincinnati OH 45221 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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