W. Gong et al., THE EFFECTS OF PARTICLE-SIZE AND DISTRIBUTION ON THE MAGNETIC-PROPERTIES OF COERCIVE SM(CO,FE,CU,ZR)(Z) ALLOY POWDERS FOR BONDED MAGNET APPLICATIONS, Journal of applied physics, 81(8), 1997, pp. 5640-5642
The microstructure of Sm(CobalFexCu0.08Zr0.03)(8.2), where x = 0.23, 0
.26, and 0.28, in the as-cast state and after various processing stage
s has been examined by optical microscopy. The size of the 2:17 matrix
phase was found to be approximately 100 mu m in the as-cast state. A
slight increase in the size of the 2:17 matrix was observed after ther
mal processing. Subgrains of 10 to 20 mu m are present in the 2:17 mat
rix of the fully processed ingots. Powders with a mean particle size r
ange of 3-300 mu m were found to exhibit a Gaussian distribution. A sl
ight increase in intrinsic coercivity (H-ci) was observed when the mea
n particle size was decreased from 300 to 200 mu m and remained nearly
constant for sizes ranging between 10 and 200 mu m. A significant dec
rease in H-ci was observed when powders were further reduced below 10
mu m. Similar trends were also observed for remanence (B-r), maximum e
nergy product (BHmax), and squareness of the second quadrant demagneti
zation curve. The size of the subgrains was found to be critical to th
ese properties. The H-ci of alloy powders with a high Fe content appea
red to degrade more severely when reduced below 10 mu m. For a fixed m
ean particle size, alloy powders with a high Fe content also exhibited
a less-square second quadrant demagnetization curve. A B-r of 9.2 kG,
H-ci of 18 kOe, H-cb Of 7.4 kOe, BHmax of 19 MGOe, and a squareness r
atio of 0.91 have been obtained on Sm(CobalFe0.23Cu0.08Zr0.03)(8.2). A
s expected for alloys with a higher Fe content, B-r of 11.3 kG, H-ci o
f 20 kOe, H-cb Of 8.1 kOe, BHmax of 25 MGOe, and a square ratio of 0.8
3 have been obtained on Sm(CobalFe0.28Cu0.08Zr0.03)(8.2). (C) 1997 Ame
rican Institute of Physics.