首页> 外文OA文献 >Solidification Microstructures of the Ingots Obtained by Arc Melting and Cold Crucible Levitation Melting in TiNbTaZr Medium-Entropy Alloy and TiNbTaZrX (X = V, Mo, W) High-Entropy Alloys
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Solidification Microstructures of the Ingots Obtained by Arc Melting and Cold Crucible Levitation Melting in TiNbTaZr Medium-Entropy Alloy and TiNbTaZrX (X = V, Mo, W) High-Entropy Alloys

机译:Tinbtazr中熵合金和Tinbtazrx(X = V,Mo,W)高熵合金中电弧熔融和冷坩埚悬浮熔化铸锭的凝固微观结构

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摘要

The solidification microstructures of the TiNbTaZr medium-entropy alloy and TiNbTaZrX (X = V, Mo, and W) high-entropy alloys (HEAs), including the TiNbTaZrMo bio-HEA, were investigated. Equiaxed dendrite structures were observed in the ingots that were prepared by arc melting, regardless of the position of the ingots and the alloy system. In addition, no significant difference in the solidification microstructure was observed in TiZrNbTaMo bio-HEAs between the arc-melted (AM) ingots and cold crucible levitation melted (CCLM) ingots. A cold shut was observed in the AM ingots, but not in the CCLM ingots. The interdendrite regions tended to be enriched in Ti and Zr in the TiNbTaZr MEA and TiNbTaZrX (X = V, Mo, and W) HEAs. The distribution coefficients during solidification, which were estimated by thermodynamic calculations, could explain the distribution of the constituent elements in the dendrite and interdendrite regions. The thermodynamic calculations indicated that an increase in the concentration of the low melting-temperature V (2183 K) leads to a monotonic decrease in the liquidus temperature (TL), and that increases in the concentration of high melting-temperature Mo (2896 K) and W (3695 K) lead to a monotonic increase in TL in TiNbTaZrXx (X = V, Mo, and W) (x  =  0 − 2) HEAs.
机译:研究了Tinbazr中熵合金和Tinbazrx(X = V,Mo和W)高熵合金(HEAS)的凝固微观结构,包括Tinbtazrmo Bio-Hea。无论铸锭和合金系统的位置如何,在通过电弧熔化制备的锭料中观察到等轴的树突结构。此外,在Tizrnbtamo Bio-Sea之间没有显着差异在弧形熔化(AM)锭和冷坩埚悬浮熔融(CCLM)锭之间。在AM锭中观察到冷冻,但不在CCLM锭中。在Tinbtazr Mea和Tinbtazrx(x = V,Mo和W)中,宁静的区域倾向于富含Ti和Zr的富集。通过热力学计算估计的凝固过程中的分配系数可以解释树突和宁干地区的构成元素的分布。热力学计算表明,增加低熔点温V的浓度(2183 K)的引线,以液相线温度(TL)的单调减少,在高熔融温度的浓度增加的Mo(2896 K) W(3695 k)导致TinBtazrxx(x = V,Mo和W)中T1的单调增加(x = 0 - 2)。

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