Title :
Composite Bonded Magnets With Self-Recoverability for Miniaturized Anisotropic Magnet Rotor
Author :
Yamashita, Fumitoshi ; Yamada, Osamu ; Ohya, Shiho ; Kobayashi, Osamu ; Nakano, Masaki ; Fukunaga, Hirotoshi
Author_Institution :
Rotary Component Technol. Dev. Div., Minebea Co., Ltd., Shizuoka, Japan
fDate :
6/1/2010 12:00:00 AM
Abstract :
In the preparation of a miniaturized rotor, a composite bonded magnet was fabricated by taking advantage of self-recoverability. A preformed magnet was synthesized by using incomplete three-dimensional network molecular structure which was formed under the optimum conditions at a temperature of 433 K, an alignment field of 1.4 MA/m, and a low compacting pressure of 50 MPa, respectively. The preformed ones were extruded and compressed into a ring-shaped magnet by using the self-recoverability at a pressure of 200 MPa and a temperature of 423 K under non-alignment-field. Through the process, a composite bonded magnet rotor in the shape of a ring could be prepared without a bonding layer. It was clarified that a 4 pole/6 slot DC brush less motor can be obtained by using the ring-shaped rotor comprising a parallel oriented anisotropic magnet with 7 mm in outer diameter, 158 in , and 6.2 in density, respectively. Resultantly, the developed rotor enabled us to increase the S-T gradient by 1.75 times compared with that for a conventional isotropic Nd-Fe-B bonded magnet rotor with the same dimensions.
Keywords :
brushless DC motors; magnets; rotors; DC brushless motor; anisotropic magnet rotor; composite bonded magnet; incomplete three-dimensional network molecular structure; parallel oriented anisotropic magnet; pressure 200 MPa; pressure 50 MPa; ring-shaped magnet; ring-shaped rotor; self-recoverability; temperature 423 K; temperature 433 K; Anisotropic magnetoresistance; Bonding; Brushless motors; Magnetic materials; Magnetic properties; Magnets; Powders; Remanence; Rotors; Temperature; Anisotropic bonded magnet rotor; DC brushless motor; anisotropic rare earth bonded magnet; self-recoverable binder system;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2010.2041050