TY - JOUR
T1 - Compositional dependence of thermal stability and soft magnetic properties for fc-al-ga-p-c-b glassy alloys
AU - Mizushima, T.
AU - Makino, A.
AU - Yoshida, S.
AU - Inoue, A.
PY - 1999
Y1 - 1999
N2 - Structure, glass forming ability and soft magnetic properties for Fe-Al-Ga-P-C-B glassy alloy system were investigated in the compositional range of Fe from 69 to 78 at%, (Al+Ga) from 2 to 12 and (P+C+B) from 17 to 28. The saturation magnetization (a,) rises gradually with j increase of Fe concentration. The maximum value of 70K for supercooled liquid region I (AT.Tj-Tp T,: crystallization temperature, Tg: glass transition temperature.) and the maximum I thickness of 180 [im for glass formation (!,) are found in the composition range around ; Fe=70at% and (Al+Ga)=7at%. The highest permeability (iie) of 20,000 at IkHz and the lowest ! coercive force (Hc) of 2 A/m at the sample thickness of 30 urn can be also obtained at this I composition. It was ascertained that the composition regions to yield the maximum glass forming j ability and lowest magnetostriction were in agreement with that in which the most excellent soft 1 ' hiagnetic properties were yielded. This results allow us to assume that the excellent soft magnetic properties for this glassy alloy system in the limited composition range are presumably due to high structural homogeneity resulting from significantly high glass-forming ability. le 1999 Materials Research Society.
AB - Structure, glass forming ability and soft magnetic properties for Fe-Al-Ga-P-C-B glassy alloy system were investigated in the compositional range of Fe from 69 to 78 at%, (Al+Ga) from 2 to 12 and (P+C+B) from 17 to 28. The saturation magnetization (a,) rises gradually with j increase of Fe concentration. The maximum value of 70K for supercooled liquid region I (AT.Tj-Tp T,: crystallization temperature, Tg: glass transition temperature.) and the maximum I thickness of 180 [im for glass formation (!,) are found in the composition range around ; Fe=70at% and (Al+Ga)=7at%. The highest permeability (iie) of 20,000 at IkHz and the lowest ! coercive force (Hc) of 2 A/m at the sample thickness of 30 urn can be also obtained at this I composition. It was ascertained that the composition regions to yield the maximum glass forming j ability and lowest magnetostriction were in agreement with that in which the most excellent soft 1 ' hiagnetic properties were yielded. This results allow us to assume that the excellent soft magnetic properties for this glassy alloy system in the limited composition range are presumably due to high structural homogeneity resulting from significantly high glass-forming ability. le 1999 Materials Research Society.
UR - http://www.scopus.com/inward/record.url?scp=0033308237&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=0033308237&partnerID=8YFLogxK
M3 - Article
AN - SCOPUS:0033308237
SN - 0272-9172
VL - 554
SP - 155
EP - 160
JO - Materials Research Society Symposium - Proceedings
JF - Materials Research Society Symposium - Proceedings
ER -