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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >A new model of competitive grain growth dominated by the solute field of the Nickel-based superalloys during directional solidification
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A new model of competitive grain growth dominated by the solute field of the Nickel-based superalloys during directional solidification

机译:一种新的竞争性谷物生长模型,由镍基超合金的溶质凝固在定向凝固过程中

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摘要

To accurately predict the microstructure evolution of competitive columnar grain growth, the influence of the potential dominant factors of competition growth such as thermal field, solute field and flow field on the overgrowth behavior of trinary-crystal samples during directional solidification was systematically investigated, with the preferred orientation of the experimental grains orienting parallel and at a limited misorientation angle with respect to the temperature gradient direction. It was found that the grain overgrowth rate was weakly dependent on the temperature gradient, which was inconsistent with the classical theoretical assumption that the grain overgrowth rate was determined by the difference of the tip undercooling between the competing grains. In contrast, the grain overgrowth rate was sensitive to the solute field around the dendrite tips. Additionally, with increasing the natural convection, the grain over-growth rate tended to be promoted at low withdraw speed. These phenomena were attributed to the mechanisms of solute interaction in the converging case and sidebranching events in the diverging case, while the solute field was the dominant factor to govern the overgrowth behavior of the competing grains. Moreover, a new model of competitive grain growth based on the solute field was proposed to predict the microstructure evolution of the Nickel-based superalloys during the directional solidification process. In this new model, the primary spacing of the well-oriented grain in the converging case was smaller than that in the diverging case due to the sidebranching events and dendrite lateral motion, which highlighted a new mechanism of primary spacing evolution in the directional columnar solidification structure. (c) 2021 Elsevier B.V. All rights reserved.
机译:为了准确预测竞争柱状晶粒生长的微观结构演变,系统研究了竞争生长的潜在主导因素,如温度场、溶质场和流场对定向凝固过程中三元晶体样品过生长行为的影响,实验晶粒的择优取向平行,且相对于温度梯度方向有一个有限的错取向角。研究发现,晶粒过生长速率对温度梯度的依赖性很弱,这与经典理论假设不一致,即晶粒过生长速率由竞争晶粒之间的尖端过冷度差决定。相比之下,晶粒过度生长速率对枝晶尖端周围的溶质场比较敏感。此外,随着自然对流的增加,在较低的抽芯速度下,晶粒的过生长速率趋于提高。这些现象归因于会聚情况下的溶质相互作用机制和发散情况下的侧分支事件,而溶质场是控制竞争晶粒过度生长行为的主导因素。此外,提出了一种基于溶质场的竞争晶粒长大模型,用于预测镍基高温合金定向凝固过程中的微观组织演变。在这个新模型中,由于侧向分支事件和枝晶横向运动,会聚情况下取向良好晶粒的初生间距小于发散情况下的初生间距,这突出了定向柱状凝固组织中初生间距演变的新机制。(c)2021爱思唯尔B.V.保留所有权利。

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