Bewlay B P, Sitzman S D, Brewer L N, Jackson M R
General Electric Global Research, Schenectady, NY 12301, USA.
Microsc Microanal. 2004 Aug;10(4):470-80. doi: 10.1017/S1431927604040760.
Nb-silicide in situ composites have great potential for high-temperature turbine applications. Nb-silicide composites consist of a ductile Nb-based solid solution together with high-strength silicides, such as Nb5Si3 and Nb3Si. With the appropriate addition of alloying elements, such as Ti, Hf, Cr, and Al, it is possible to achieve a promising balance of room-temperature fracture toughness, high-temperature creep performance, and oxidation resistance. In Nb-silicide composites generated from metal-rich binary Nb-Si alloys, Nb3Si is unstable and experiences eutectoid decomposition to Nb and Nb5Si3. At high Ti concentrations, Nb3Si is stabilized to room temperature, and the eutectoid decomposition is suppressed. However, the effect of both Ti and Hf additions in quaternary alloys has not been investigated previously. The present article describes the discovery of a low-temperature eutectoid phase transformation during which (Nb)3Si decomposes into (Nb) and (Nb)5Si3, where the (Nb)5Si3 possesses the hP16 crystal structure, as opposed to the tI32 crystal structure observed in binary Nb5Si3. The Ti and Hf concentrations were adjusted over the ranges of 21 to 33 (at.%) and 7.5 to 33 (at.%) to understand the effect of bulk composition on the phases present and the eutectoid phase transformation.
铌硅化物原位复合材料在高温涡轮应用方面具有巨大潜力。铌硅化物复合材料由韧性的铌基固溶体以及高强度硅化物(如Nb5Si3和Nb3Si)组成。通过适当添加合金元素,如Ti、Hf、Cr和Al,可以在室温断裂韧性、高温蠕变性能和抗氧化性之间实现良好的平衡。在由富金属二元Nb-Si合金生成的铌硅化物复合材料中,Nb3Si不稳定,会经历共析分解为Nb和Nb5Si3。在高Ti浓度下,Nb3Si可稳定至室温,并抑制共析分解。然而,此前尚未研究过在四元合金中同时添加Ti和Hf的效果。本文描述了一种低温共析相变的发现,在此过程中(Nb)3Si分解为(Nb)和(Nb)5Si3,其中(Nb)5Si3具有hP16晶体结构,这与在二元Nb5Si3中观察到的tI32晶体结构不同。调整Ti和Hf的浓度范围为21至33(原子百分比)和7.5至33(原子百分比),以了解整体成分对所存在相和共析相变的影响。