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Microstructural evolution and mechanical properties of an Nb-16Si in-situ composite with Fe additions prepared by arc-melting

机译:电弧熔炼添加Nb-16Si原位复合材料的微观组织演变和力学性能

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This paper deals with phase constitutions, microstructural evolutions, and mechanical properties of Nb-16Si-xFe in-situ composites (where x = 2, 4, 6 at.%, referred as to 2Fe, 4Fe and 6Fe alloys, hereafter) prepared by arc-melting. It is found that with additions of Fe, Nb_4FeSi silicide arises and microstructures of as-cast samples are consisted of dendritic-like Nbss phase, NbaSi block, and Nb_4FeSi matrix in the 2Fe and 4Fe alloys, and of the dendritic-like Nb_(ss) phase and Nb_4FeSi matrix in the 6Fe alloy. When heat-treated at 1350 °C for 100 h, part of the Nb_3Si phase decomposes in the 2Fe and 4Fe alloys, and the 6Fe alloy shows no change in microstructure as compared with the as-cast one. The Nb_4FeSi silicide is found to be brittle, its fracture toughness and elastic modulus are first obtained, having values about 1.22 MPa m~(1/2), and 310 GPa, respectively. The fracture toughness of the bulk as-cast and heat-treated Nb-16Si-xFe samples are changed slightly by the Fe additions, which is in a range of 9.03-10.19 MPa m~(1/2). It is interesting that at room temperature, strength is improved by the Fe additions, whereas at 1250 °C and 1350 °C the strength decreases. As the Fe content increased from 2 at.% to 6 at.%, for example, the 0.2% yield strength increases from 1410 MPa to 1580 MPa at room temperature, decreases from 479 MPa to 385 MPa at 1250 °C.
机译:本文研究了Nb-16Si-xFe原位复合材料的相组成,微观结构演变和力学性能(其中x = 2、4、6 at。%,以下称为2Fe,4Fe和6Fe合金)。电弧熔化。结果发现,添加铁会生成Nb_4FeSi硅化物,铸态样品的微观结构由2Fe和4Fe合金中的树状样Nbss相,NbaSi块和Nb_4FeSi基体以及类树状样Nb_(ss)组成。 )相和6Fe合金中的Nb_4FeSi基体。当在1350°C下热处理100小时时,Nb_3Si相的一部分在2Fe和4Fe合金中分解,而6Fe合金与铸态相比没有组织变化。发现Nb_4FeSi硅化物是脆性的,首先获得其断裂韧性和弹性模量,其值分别约为1.22 MPa m〜(1/2)和310 GPa。 Nb-16Si-xFe的整体铸态和热处理后样品的断裂韧性随Fe的添加而略有变化,范围为9.03-10.19 MPa m〜(1/2)。有趣的是,在室温下,通过添加Fe可以提高强度,而在1250°C和1350°C时,强度会降低。例如,当Fe含量从2 at%增加到6 at%时,0.2%的屈服强度在室温下从1410 MPa增加到1580 MPa,在1250°C下从479 MPa降低到385 MPa。

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