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MICROSTRUCTURAL CONTROL OF Nb-Si ALLOY WITH INVARIANT REACTIONS

机译:不变反应对Nb-Si合金的组织控制

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Various investigations have been attempted to improve the low temperature ductility of Nb-silicides by microstructural control while they show superior high temperature strength. Present authors have focused on the microstructure evolution through the eutectic and eutectoid reactions in Nb-rich portion of Nb-Si binary system, and with small amounts of additives (Zr or Mg) alloys large Nb grains with fine silicide (α-Nb_5Si_3) particles have been obtained, which is attractive for high temperature use. For further understanding of this phenomenon, the present study has two objectives; one is to apply the advanced solidification technique for further microstructure control, and the other is to investigate the effect of co-existence of Zr and trace amount of Mg on the microstructure evolution during the eutectoid reaction in terms of the interfacial energy between phases. EBSD analysis revealed that uni-directionally solidified alloy show the same crystallographic orientation relationship (O.R.) between Nb and α-Nb_5Si_3 with that in arc-melted alloy having the same composition. On the other hand, Mg-doped alloy containing Zr shows an O.R. which was not observed in previous works. This implies that Mg doping is effective to control the interfacial energy between Nb and α-Nb_sSi_3 even in Nb-Si-Zr alloys. Two-step heat-treatment is found to be effective to obtain finer microstructure, and a further investigation on the controlling factors of eutectoid decomposition will provide a proper route to well-controlled microstructures.
机译:已经尝试了各种研究以通过显示出优异的高温强度的微结构控制来改善Nb硅化物的低温延展性。目前的作者集中于在Nb-Si二元体系的富Nb部分中通过共晶和共析反应进行的微观结构演变,以及少量的添加剂(Zr或Mg)合金,大Nb晶粒和细硅化物(α-Nb_5Si_3)颗粒已经获得了高温使用的吸引力。为了进一步了解这种现象,本研究有两个目标:一种是将先进的凝固技术应用于进一步的微观结构控制,另一种是根据相之间的界面能,研究共存反应中Zr和痕量Mg的共存对微结构演变的影响。 EBSD分析表明,单向凝固合金在Nb和α-Nb_5Si_3之间的结晶取向关系(O.R.)与在具有相同组成的电弧熔合合金中的结晶取向关系相同。另一方面,含有Zr的Mg掺杂合金的O.R。在以前的作品中没有观察到。这意味着即使在Nb-Si-Zr合金中,Mg掺杂也可以有效地控制Nb和α-Nb_sSi_3之间的界面能。发现两步热处理可有效获得更精细的微观结构,对共析分解的控制因素的进一步研究将为获得良好控制的微观结构提供适当的途径。

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