Kai-rui Zhu, Wei Jiang, Ji-li Wu, and Bo Zhang, Effect of Mo on properties of the industrial Fe-B-alloy-derived Fe-based bulk metallic glasses, Int. J. Miner. Metall. Mater., 24(2017), No. 8, pp. 926-930. https://doi.org/10.1007/s12613-017-1479-1
Cite this article as:
Kai-rui Zhu, Wei Jiang, Ji-li Wu, and Bo Zhang, Effect of Mo on properties of the industrial Fe-B-alloy-derived Fe-based bulk metallic glasses, Int. J. Miner. Metall. Mater., 24(2017), No. 8, pp. 926-930. https://doi.org/10.1007/s12613-017-1479-1
Research Article

Effect of Mo on properties of the industrial Fe-B-alloy-derived Fe-based bulk metallic glasses

+ Author Affiliations
  • Corresponding authors:

    Ji-li Wu    E-mail: wujili@msn.com

    Bo Zhang    E-mail: bo.zhang@hfut.edu.cn

  • Received: 20 December 2016Revised: 26 March 2017Accepted: 27 March 2017
  • The experimental results concerning the effects of Mo on the glass-forming ability (GFA), thermal stability, and mechanical, anticorrosion, and magnetic properties of an (Fe71.2B24Y4.8)96Nb4 bulk metallic glass (BMG) were presented. An industrial Fe-B alloy was used as the raw material, and a series of Fe-based BMGs were synthesized. In BMGs with the Mo contents of approximately 1at%-2at%, the cast alloy reached a critical diameter of 6 mm. The hardness and fracture strength also reached their maximum values in this alloy system. However, the anticorrosion and magnetic properties of the BMGs were not substantially improved by the addition of Mo. The low cost, good GFA, high hardness, and high fracture strength of the Fe-based BMGs developed in this work suggest that they are potential candidates for commercial applications.
  • loading
  • [1]
    Y.Z. Lu, Y.J. Huang, X. Lu, Z.X. Qin, and J. Shen, Specific heat capacities of Fe-Co-Cr-Mo-C-B-Y bulk metallic glasses and their correlation with glass-forming ability, Mater. Lett., 143(2015), No. 10, p. 191.
    [2]
    S.F. Guo, K.C. Chan, S.H. Xie, P. Yu, Y.J. Huang, and H.J. Zhang, Novel centimeter-sized Fe-based bulk metallic glass with high corrosion resistance in simulated acid rain and seawater, J. Non-Cryst. Solids, 369(2013), No. 6, p. 29.
    [3]
    L. Wang and Y.S. Chao, Corrosion behavior of Fe41Co7Cr15Mo14C15B6Y2 bulk metallic glass in NaCl solution, Mater. Lett., 69(2012), No. 4, p. 76.
    [4]
    F.L. Kong, C.T. Chang, A. Inoue, E. Shalaan, and F. Al-Marzouki, Fe-based amorphous soft magnetic alloys with high saturation magnetization and good bending ductility, J. Alloys Compd., 615(2014), p. 163.
    [5]
    Z.B. Jiao, H.X. Li, Y. Wu, J.E. Gao, S.L. Wang, S. Yi, and Z.P. Lu, Effects of Mo additions on the glass-forming ability and magnetic properties of bulk amorphous Fe-C-Si-B-P-Mo alloys, Sci. China Phys. Mech. Astron., 53(2010), No. 3, p. 430.
    [6]
    S. Das, S. Garrison, and S. Mukherjee, Bi-functional mechanism in degradation of toxic water pollutants by catalytic amorphous metals, Adv. Eng. Mater., 18(2016), No. 2, p. 214.
    [7]
    D.H. Kim, J.M. Park, D.H. Kim, and W.T. Kim, Development of quaternary Fe-B-Y-Nb bulk glassy alloys with high glass-forming ability, J. Mater. Res., 22(2007), No. 2, p. 3.
    [8]
    Y. Cai, H. Ling, and T. Jiang, Effect of industrial raw materials on the glass-forming ability, magnetic and mechanical properties of fe-based bulk metallic glasses, Metall. Mater. Trans. B, 46(2015), No. 6, p. 2484.
    [9]
    W. Pilarczyk, O. Starczewska, and D. Lukowiec, Nanoindentation characteristic of Fe-based bulk metallic glass laser weld, Phys. Status Solidi B, 252(2015), No. 11, p. 2598.
    [10]
    T.D. Shen, B.R. Sun, and S.W. Xin, Effects of metalloids on the thermal stability and glass forming ability of bulk ferromagnetic metallic glasses, J. Alloys Compd., 631(2015), No. 3, p. 60.
    [11]
    Y.H. Zhao, M.X. Pan, D.Q. Zhao, W.H. Wang, and J. Eckert, Magnetic transitions in Dy-microalloyed Fe-based bulk metallic glasses, J. Phys. D, 38(2005), No. 13, p. 2162.
    [12]
    X. Li, H. Kato, K. Yubuta, A. Makino, and A. Inoue, Improved plasticity of iron-based high-strength bulk metallic glasses by copper-induced nanocrystallization, J. Non-Cryst. Solids, 357(2011), No. 15, p. 3002.
    [13]
    A. Masood, T. Tamaki, V. Ström, A. Borgenstam, J.Ågren, and K.V. Rao, A new class of materials for magneto-optical applications:transparent amorphous thin films of Fe-B-Nb and Fe-B-Nb-Y metallic glassy alloys, IEEE Trans. Magn., 50(2014), No. 4, p. 1.
    [14]
    H.B. Wang, L.X. Ma, L. Li, and B. Zhang, Fabrication of Fe-based bulk metallic glasses from low-purity industrial raw materials, J. Alloys Compd., 629(2015), No. 1, p. 1.
    [15]
    F. Xu, Y.H. Ding, X.H. Deng, P. Zhang, and Z.L. Long, Indentation size effects in the nano-and micro-hardness of a Fe-based bulk metallic glass, Phys. B, 450(2014), No. 26, p. 84.
    [16]
    T. Xu, R. Li, R.J. Xiao, G. Liu, J.F. Wang, and T. Zhang, Tuning glass formation and brittle behaviors by similar solvent element substitution in (Mn,Fe)-based bulk metallic glasses, Mater. Sci. Eng. A, 626(2015), p. 16.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Share Article

    Article Metrics

    Article Views(378) PDF Downloads(8) Cited by()
    Proportional views

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return