DocumentCode :
375734
Title :
High energy NdFeB permanent magnets with nanocrystalline structure
Author :
Alexandru, St ; Kappel, W. ; Valeanu, A. ; Jianu, A. ; Bunescu, M. ; Ivan, I. ; Codescu, M. ; Mihaiescu, M. ; Alecu, G.
Author_Institution :
ICPE, Bucharest, Romania
Volume :
1
fYear :
2001
fDate :
2001
Firstpage :
55
Abstract :
Experimental studies of remanence enhancement and the effect of quenching conditions on rapid solidification of undercooling NdFeB melts with composition near the Nd2Fe14B phase was investigated by melt spinning technic. Nanocrystalline alloys and nanocomposites Nd2Fe14B/αFe have been synthesized by melt-spinning a Nd rich alloy, Nd30FeB0.9 (%weight) and Fe rich alloy Nd12.6FeB3.88 (% weight) at the wheel speed in the range up to 25-40 m/s. Microstructural and magnetic studies have showed that is an corresponding rapid solidification and wheel speed for to obtain a uniform nanocrystalline as well amorphous microstructure. Lower speed appearance larger grains for both Nd2Fe14B and Fe phases, while higher speed leads to appearance of an amorphous phase, which will result in a Nd2Fe14B/αFe, with lower dimension grains, after subsequent crystallization annealing treatment. Refinement of the mean Nd2Fe14B crystallites diameter below ~50 nm for melt spun NdFeB alloys leads to enhancement of the remanence above that predicted by Stoner Wohlfarth theory. Increasing the Fe:Nd ratio promotes the formation of nanocomposite Nd2Fe14B/αFe structure which leads to a further enhancement Jr, owing to interphase, with higher saturation, αFe phase
Keywords :
annealing; boron alloys; ferromagnetic materials; grain size; iron alloys; melt spinning; nanostructured materials; neodymium alloys; permanent magnets; quenching (thermal); rapid solidification; remanence; undercooling; 25 to 40 m/s; Nd2Fe14B; Nd2Fe14B-Fe; Nd2Fe14B/α-Fe nanocomposite; Stoner-Wohlfarth theory; amorphous microstructure; crystallite size; crystallization annealing; grain size; high energy NdFeB permanent magnet; melt spinning; nanocrystalline structure; quenching; rapid solidification; remanence; undercooling; wheel speed; Amorphous materials; Crystallization; Iron alloys; Nanocomposites; Nanostructures; Neodymium; Permanent magnets; Remanence; Spinning; Wheels;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Semiconductor Conference, 2001. CAS 2001 Proceedings. International
Conference_Location :
Sinaia
Print_ISBN :
0-7803-6666-2
Type :
conf
DOI :
10.1109/SMICND.2001.967415
Filename :
967415
Link To Document :
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