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Nb10Ti61Co29包共晶合金定向凝固组织演化及其凝固路径模拟计算
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桂林电子科技大学

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TG

基金项目:

国家自然科学(51761009和51701048)、广西自然科学(2020GXNSFAA159163)、桂林电子科技大学研究生教育创新计划项目(2019YCXS109)和广西信息材料重点实验室(191021-Z)资助


Microstructure evolution and simulation of solidification path in Nb10Ti61Co29 quasi-peritectic alloy
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Affiliation:

School of Materials Science and Engineering,Guilin University of Electronic Technology

Fund Project:

The National Natural Science Foundation of China (51761009 and 51701048),The Natural Science Foundation of Guang Xi(2020GXNSFAA159163),the Guangxi Key Laboratory of Information Laboratory (191021-Z).

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    摘要:

    包共晶反应,兼具共晶和包晶反应的双重特性,存在于众多三元合金体系中。然而,人们对其凝固特点了解较少,其凝固机制到目前为止尚不明确。基于此,本文选择包共晶点附近的Nb10Ti61Co29合金为研究对象,利用Bridgman定向凝固技术对其开展了一系列定向凝固实验(v=1, 3, 5, 15, 30, 70 μm/s),然后利用XRD,SEM和EDS等分析了不同生长速率下的凝固组织,阐明定向凝固组织演化规律,最终得出相应的凝固机理。研究结果表明,不同生长速率下合金的凝固组织均包含初始过渡区、稳态生长区以及淬火区。随着生长速率逐渐增大,初始过渡区上初始生长界面轮廓越来越清晰,并逐渐趋于平直状态,伴随上述变化,稳态生长区与初始过渡区关联性逐渐变小;其次,随着生长速率逐渐增大,合金淬火界面依次经历平界面向胞状晶再到树枝晶的转变,其中,淬火界面在生长速率为1 μm/s时呈平直状态,在生长速率为3和5 μm/s时,淬火界面大致呈胞状,当生长速率进一步增大时淬火界面呈现典型的枝晶生长;最后,利用CALPHAD方法计算得出了该合金在平衡凝固过程中会依次发生如下四个凝固反应:(a) L→α-Nb;(b) 二元共晶反应L→α-Nb + TiCo;(c) 三元包共晶反应L + TiCo→α-Nb + Ti2Co 和 (d) 二元共晶反应L→α-Nb + Ti2Co。

    Abstract:

    The quasi-peritectic reaction, which has dual characteristics of eutectic and peritectic reaction, exists in many ternary alloy systems. However, its solidification characteristics and its solidification mechanism is still unclear so far. To address this question, the Nb10Ti61Co29 alloy near the quasi-peritectic point was selected as the research object in this paper, and a series of directional solidification experiments with different growth rates (ν=1, 3, 5, 15, 30, 70 μm/s) were carried out using Bridgman directional solidification technique. Then the solidification structure at each growth rate was analyzed by XRD, SEM and EDS, and the microstructure evolution law of these directionally solidified samples was clarified. The results show that, the solidification structure of this alloy at different growth rates includes initial transition zone, steady-state growth zone and quenching zone. As the growth rate increases, the profile of the initial growth interface in the initial transition zone becomes more and more clear. With these changes, the relationship between the steady-state growth region and the initial transition region becomes smaller. Moreover, the quenching interfaces go through the transition from flat-bound to cell-oriented to dendrite in turn with the increase of the growth rate. In especial, the quenching interface is flat when the growth rate is 1 μm/s, whereas the quenching interface is roughly cellular when the growth rates are 3 and/or 5 μm/s. Lastly, the following four solidification reactions will occur successively in the process of equilibrium solidification, which was calculated by CALPHAD method, (a) L→α-Nb; (b) binary eutectic reaction L→α-Nb + TiCo;α-Nb TiCo; (c) ternary quasiperitecticcoated reaction L+TiCo→α-Nb +Ti2Co and (d) binary eutectic reaction L→α-Nb + Ti2Co.

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狄翀博,闫二虎,陈运灿,王金华,刘威,王豪,孙立贤. Nb10Ti61Co29包共晶合金定向凝固组织演化及其凝固路径模拟计算[J].稀有金属材料与工程,2021,50(9):3194~3202.[DI Chongbo, YAN Erhu, CHEN Yuncan, WANG Jinhua, LIU Wei, WANG Hao, SUN Lixian. Microstructure evolution and simulation of solidification path in Nb10Ti61Co29 quasi-peritectic alloy[J]. Rare Metal Materials and Engineering,2021,50(9):3194~3202.]
DOI:10.12442/j. issn.1002-185X.20200704

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  • 收稿日期:2020-09-14
  • 最后修改日期:2020-12-07
  • 录用日期:2020-12-22
  • 在线发布日期: 2021-09-27
  • 出版日期: 2021-09-24