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Type of Primary Nb5Si3 and Precipitation of Nbss in αNb5Si3 in a Nb-8.3Ti-21.1Si-5.4Mo-4W-0.7Hf (at.) Near Eutectic Nb-Silicide-Based Alloy

机译:Nb-8.3Ti-21.1Si-5.4Mo-4W-0.7Hf(at。%)在共晶Nb硅化物基合金中的原始Nb5Si3类型和Nbss在αNb5Si3中的析出

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摘要

The Nb-silicide-based alloy of near eutectic composition (at.%) Nb-21.1Si-8.3Ti-5.4Mo-4W-0.7Hf (alloy CM1) was studied in the cast and heat-treated (1500 °C/100 h) conditions. The alloy was produced in the form of buttons and bars using three different methods, namely arc-melting, arc-melting and suction casting, and optical floating zone (OFZ) melting. In the former two cases the alloy solidified in water-cooled copper crucibles. Buttons and suction-cast bars of different size, respectively of 10 g and 600 g weight and 6 mm and 8 mm diameter, were produced. The OFZ bars were grown at three different growth rates of 12, 60 and 150 mm/h. It was confirmed that the type of Nb5Si3 formed in the cast microstructures depended on the solidification conditions. The primary phase in the alloy CM1 was the βNb5Si3. The transformation of βNb5Si3 to αNb5Si3 had occurred in the as cast large size button and the OFZ bars grown at the three different growth rates, and after the heat treatment of the small size button and the suction-cast bars of the alloy. This transformation was accompanied by subgrain formation in Nb5Si3 and the precipitation of Nbss in the large size as cast button and only by the precipitation of Nbss in the cast OFZ bars. Subgrains and precipitation of Nbss in αNb5Si3 was observed in the small size button and suction-cast bars after the heat treatment. Subgrains formed in αNb5Si3 after the heat treatment of the OFZ bars. The partitioning of solutes and in particular of Mo and Ti was key to this phase transformation. Subgrain formation was not necessary for precipitation of Nbss in αNb5Si3, but the partitioning of solutes was essential for this precipitation.
机译:在铸造和热处理(1500°C / 100)中研究了接近共晶成分(at。%)Nb-21.1Si-8.3Ti-5.4Mo-4W-0.7Hf(合金CM1)的Nb硅化物基合金h)条件。使用三种不同的方法以纽扣和棒状形式生产合金,分别是电弧熔化,电弧熔化和吸铸以及光学浮区(OFZ)熔化。在前两种情况下,合金在水冷铜坩埚中凝固。制作了重量分别为10 g和600 g以及直径为6 mm和8 mm的不同尺寸的纽扣和吸铸条。 OFZ棒以12、60和150 mm / h的三种不同增长率生长。可以确定的是,铸态组织中形成的Nb5Si3的类型取决于凝固条件。合金CM1中的主要相为βNb5Si3。 βNb5Si3向αNb5Si3的转变发生在铸造的大尺寸纽扣和以三种不同生长速率生长的OFZ棒中,以及在对合金的小尺寸纽扣和吸铸棒进行热处理之后。这种转变伴随着Nb5Si3中亚晶粒的形成以及作为浇铸纽扣的大尺寸Nbss的析出,并且仅伴随着铸造OFZ棒中Nbss的析出。热处理后,在小尺寸纽扣和吸铸棒中观察到亚晶和Nbss在αNb5Si3中的沉淀。 OFZ棒经过热处理后,在αNb5Si 3 中形成亚晶。溶质尤其是Mo和Ti的分配是该相变的关键。亚晶粒的形成对于αNb 5 Si 3 中Nb ss 的沉淀不是必需的,但是溶质的分配对于这种沉淀至关重要。

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