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INFLUENCE OF Co ON THE GLASS FORMING ABILITY AND SOFT MAGNETIC PROPERTY OF Fe–B–Y–Nb BULK AMORPHOUS ALLOY |
WU Zeyu; GUO Shengfeng; LI Ning; LIU Lin |
State Key Laboratory of Material Processing and Die&Mould Technology; College of Materials Science and Engineering; Huazhong University of Science and Technology; Wuhan 430074 |
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Cite this article:
WU Zeyu GUO Shengfeng LI Ning LIU Lin. INFLUENCE OF Co ON THE GLASS FORMING ABILITY AND SOFT MAGNETIC PROPERTY OF Fe–B–Y–Nb BULK AMORPHOUS ALLOY. Acta Metall Sin, 2009, 45(2): 249-252.
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Abstract [(Fe1-xCox)71.2B24Y4.8]96Nb4 (x=0, 0.1, 0.2, 0.3 and 0.4) alloy rods with 2—5 mm in diameter were prepared using commercial materials and suction casting method. XRD results show that the substitution of an appropriate amount of Co for Fe can improve effectively the glass forming ability and extend considerably the composition scope for glassy formation. DTA curves indicate that all the alloys with different Co contents exhibit a high glass transition temperature (Tg≥850 K) and wide supercooled liquid region (ΔTx≥97 K). It is also observed that Co substitution for Fe enhances significantly the soft magnetic properties. For the [(Fe0.9Co0.1)71.2B24Y4.8]96Nb4 bulk metallic glass, the saturation magnetization (Ms) has a maximum value of 26.6 kA/m, while the coercivity (Hc) is only 59 A/m. In addition, the Curie temperatures of the tested alloys increase continuously with the increase of Co content, and reaches the highest value of 577 K when x=0.4, which is about 100 K higher than that of the base alloy without Co.
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Received: 22 August 2008
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Fund: Supported by Specialized Research Fund for the Doctoral Program of Higher Education (No.200604087069) and National Natural Science Foundation of China (No.50635020) |
[1] Duwez P, Lin S C H. J Appl Phys, 1967; 38: 4096
[2] Inoue A, Shinohara Y, Gook J S. Mater Trans JIM, 1995; 36: 1427
[3] Inoue A, Zhang T, Takeuchi A. Appl Phys Lett, 1997; 71: 464
[4] Inoue A, Zhang W. J Appl Phys, 1999; 85: 4491
[5] Inoue A, Shen B L. Mater Trans JIM, 2002; 43: 766
[6] Shen T D, Schwarza R B. Appl Phys Lett, 1999; 75: 49
[7] Lin C Y, Tien H Y, Chin T S. Appl Phys Lett, 2005; 86: 162501
[8] Hu Y, Pan M X, Liu L, Zhao Y H, Zhao D Q, Wang W H. Mater Lett, 2003; 57: 2698
[9] Kim D H, Park J M, Kim D H, Kim W T. J Mater Res, 2007; 22: 471
[10] Han Z, Zhang J, Li Y. Intermetallics, 2007; 15: 1447
[11] Shen B L, Inoue A, Chang C T. Appl Phys Lett, 2004; 85: 4911
[12] Park J M, Park J S, Kim D H, Kim J H, Fleury E. J Mater Res, 2006; 21: 1019
[13] Li F S, Shen B L, MakinoA, Inoue A. Appl Phys Lett, 2007; 91: 234101
[14] Greer A L. Nature, 1993; 366: 303
[15] Slater J C. J Appl Phys, 1937; 8: 385
[16] Um C Y, McHenry M E. IEEE Trans Magn, 2004; 40: 2724
[17] Egami T. Rep Prog Phys, 1984; 47: 1601
[18] He S L, He K Y, Shen B G, Zhang H W, Zhang S Y, Guo H Q. J Appl Phys, 1999; 86: 6301 |
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