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Acta Metall Sin  2009, Vol. 45 Issue (1): 91-96    DOI:
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EFFECT OF Nb ON CRYSTALLIZATION KINETICS OF Fe-Co-Nd-B AMORPHOUS ALLOYS
XU Min1;2; YI Jun1; QUAN Mingxiu2; WANG Yandong1;ZUO Liang1
1 Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education); Northeastern University; Shenyang 110004
2) Shenyang National Laboratory for Materials Science; Institute of Metal Research; Chinese Academy of Sciences; Shenyang 110016
Cite this article: 

XU Min YI Jun QUAN Mingxiu WANG Yandong ZUO Liang. EFFECT OF Nb ON CRYSTALLIZATION KINETICS OF Fe-Co-Nd-B AMORPHOUS ALLOYS. Acta Metall Sin, 2009, 45(1): 91-96.

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Abstract  

The addition of 4% niobium in Fe-Co-Nb--B amorphous alloy may retard the crystallization process, raise the crystallized temperature and enhance the thermal stability. The nucleation of Fe3B crystallized phase is checked while the nucleation and growth of Fe23B6 phase is promoted. The average grain sizes can be reduced from 30-60 nm to about 14-20 nm. The crystallization activation energy calculated by the onset crystallization temperatures decreases obviously. The nucleation process of α-Fe(Co), Fe3B and Nd2(Fe, Co)14B phases is more difficult than the growth process, while the growth process of α-Fe(Co), Fe23B6 and Nd2(Fe, Co)14B phases is more difficult than the nucleation process caused by the addition of niobium. However, the mechanism of the nucleation and growth of the crystallized phases is almost unchanged. The crystallization process is mainly dominated by one-dimensional nucleation and three--dimensional growth with decreasing nucleation rate.

Key words:  Fe-based amorphous alloy      crystallization kinetics      crystallization activation energy      local Avrami exponent     
Received:  29 January 2008     
ZTFLH: 

TG139

 
Fund: 

Supported by National Natural Science Foundation of China (No.50471075)

URL: 

https://www.ams.org.cn/EN/     OR     https://www.ams.org.cn/EN/Y2009/V45/I1/91

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