DocumentCode :
721534
Title :
Effects of strain ratio and stain rate on microstructure and magnetic properties of Nd-Fe-B nanocrystalline magnets during hot-deformation process
Author :
Cha, H. ; Liu, S. ; Yu, J. ; Kwon, H. ; Kim, Y. ; Lee, J.
Author_Institution :
Powder & Ceramics Div., Korea Inst. of Mater. Sci., Changwon, South Korea
fYear :
2015
fDate :
11-15 May 2015
Firstpage :
1
Lastpage :
1
Abstract :
This study investigates the effects of strain ratio and strain rate on microstructure and magnetic properties of Nd-Fe-B nanocrystalline magnets during hot-deformation process. The consolidated Nd-Fe-Ga-Co-B isotropic magnet is prepared by hot-pressing under 100 MPa in a vacuum. Field emission scanning electron microscopy, transmission electron microscopy, and vibrating sample magnetometry are used for characterization. Observations show that the remanence and coercivity tended to increase and decrease with increasing strain ratio, respectively. Moreover, remanence increases while coercivity decreases as strain rate decreases. These results indicate that slow strain rate is favorable for improvement of remanence with well-aligned grains. However, a change in grain boundary phase as thinned Nd-rich phase is a major drawback, caused by increasing strain ratio including extended deformation time in slow strain-rate hot-deformation process.
Keywords :
boron alloys; cobalt alloys; coercive force; deformation; field emission electron microscopy; gallium alloys; grain boundaries; hot pressing; iron alloys; magnetometry; nanofabrication; nanomagnetics; nanostructured materials; neodymium alloys; remanence; scanning electron microscopy; transmission electron microscopy; NdFeGaCoB; coercivity; field emission scanning electron microscopy; grain boundary; hot-deformation; hot-pressing; isotropic magnet; magnetic properties; microstructure; nanocrystalline magnets; pressure 100 MPa; remanence; stain rate; strain ratio; transmission electron microscopy; vibrating sample magnetometry; Grain boundaries; Magnetic properties; Magnetic resonance imaging; Magnetometers; Microstructure; Remanence; Strain;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
Type :
conf
DOI :
10.1109/INTMAG.2015.7156664
Filename :
7156664
Link To Document :
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