Microstructure and property of directionally solidified Ni–Si hypereutectic alloy

被引:0
作者
Chunjuan Cui
Lulu Tian
Jun Zhang
Shengnan Yu
Lin Liu
Hengzhi Fu
机构
[1] Xi’an University of Architecture and Technology,School of Metallurgical Engineering
[2] Northwestern Polytechnical University,State Key Laboratory of Solidification Processing
来源
Applied Physics A | 2016年 / 122卷
关键词
Solidification Rate; Planar Interface; Ni3Si; Constitutional Undercooling; Kinetic Undercooling;
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摘要
This paper investigates the influence of the solidification rate on the microstructure, solid/liquid interface, and micro-hardness of the directionally solidified Ni–Si hypereutectic alloy. Microstructure of the Ni–Si hypereutectic alloy is refined with the increase of the solidification rate. The Ni–Si hypereutectic composite is mainly composed of α-Ni matrix, Ni–Ni3Si eutectic phase, and metastable Ni31Si12 phase. The solid/liquid interface always keeps planar interface no matter how high the solidification rate is increased. This is proved by the calculation in terms of M–S interface stability criterion. Moreover, the Ni–Si hypereutectic composites present higher micro-hardness as compared with that of the pure Ni3Si compound. This is caused by the formation of the metastable Ni31Si12 phase and NiSi phase during the directional solidification process.
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[1]  
Dutra AT(2007)Microstructure and mechanical behavior of in situ Ni–Ni J Alloys Compd 432 167-171
[2]  
Ferrandini PL(2012)Si composite Phys. B 407 3566-3569
[3]  
Caram R(2015)Microstructure and properties of Ni–Ni J. Mater. Sci. Technol. 31 280-284
[4]  
Cui CJ(2013)Si composites by directional solidification Phys. B 412 70-73
[5]  
Zhang J(1993)Effect of solidification rate on microstructure and solid/liquid interface morphology of Ni-11.5 wt%Si eutectic alloy Metall. Trans. A 24A 283-292
[6]  
Wu K(1967)Directional solidification of Ni-Ni J. Trans. ALME 239 1534-1546
[7]  
Ma YP(1966)Si eutectic in situ composites by electron beam floating zone melting Trans. Metal. Soc. AIME 236 1129-1142
[8]  
Liu L(1994)Formation of L1 Chin. J. Mater. Res. 8 209-217
[9]  
Fu HZ(2005)-structured Ni Sci. China Ser E. 35 449-458
[10]  
Cui CJ(1964)Si J. Appl. Phys. 35 444-451