High-strain-rate superplasticity due to Newtonian viscous flow in La55Al25Ni20 metallic glass

被引:0
|
作者
Tohoku Univ, Sendai, Japan [1 ]
机构
来源
Mater Trans JIM | / 8卷 / 794-803期
关键词
Amorphous alloys - Crystallization - Glass transition - Lanthanum alloys - Mechanical properties - Newtonian flow - Plastic deformation - Strain rate - Superplasticity - Temperature - Viscosity - X ray diffraction analysis;
D O I
暂无
中图分类号
学科分类号
摘要
We have investigated the deformation behavior of a La55Al25Ni20 (at%) metallic glass that has a wide supercooled liquid region of 72 K before crystallization. The glassy solid below the glass transition temperature exhibited non-Newtonian viscosity, and the supercooled liquid revealed a Newtonian viscosity that transferred to the non-Newtonian viscosity with increasing strain rate. The supercooled liquid exhibited a high-strain-rate superplasticity due to the Newtonian viscous flow that has a strain-rate sensitivity exponent (m value) of unity. The metallic glass exhibited large elongations of more than 1000% at strain rates ranging from 10-4 to 100 s-1 and at relatively low temperatures of about 0.7 Tm, and retained the ductile nature without crystallization even after the deformation. The maximum elongation to failure was about 1800% at a strain rate of 1.7 × 10-1 s-1 and at 503 K (0.71 Tm) under a flow stress of about 40 MPa. The elongation was restricted by the transition to non-Newtonian viscosity and crystallization. We succeeded in establishing the constitutive formulation of the flow stress in the supercooled liquid region. Its formulation was expressed very well by a stretched exponential function σflow = D qq exp (H*/RT) [1 - exp(E/{qq exp(H**/RT) }0.82)]. The superplasticity of the La55Al25Ni20 metallic glass was superior to that of the Zr65Al10Ni10Cu15 metallic glass. The metallic glass, moreover, had many advantages in the superplastic deformation, as compared with superplastic polycrystalline materials.
引用
收藏
相关论文
共 50 条
  • [21] A High-Strain-Rate Superplasticity of the Al-Mg-Si-Zr-Sc Alloy with Ni Addition
    Mochugovskiy, Andrey
    Kotov, Anton
    Esmaeili Ghayoumabadi, Majid
    Yakovtseva, Olga
    Mikhaylovskaya, Anastasia
    MATERIALS, 2021, 14 (08)
  • [22] REDUCTILIZATION OF AN EMBRITTLED AMORPHOUS LA55AL25NI20 ALLOY BY WATER QUENCHING FROM SUPERCOOLED LIQUID
    INOUE, A
    ZHANG, T
    MATSUBARA, E
    WASEDA, Y
    MASUMOTO, T
    MATERIALS TRANSACTIONS JIM, 1991, 32 (03): : 201 - 206
  • [23] STRUCTURAL RELAXATION OF A LA55AL25NI20 AMORPHOUS ALLOY MEASURED BY AN INTERNAL-FRICTION METHOD
    OKUMURA, H
    HO, SC
    INOUE, A
    MASUMOTO, T
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1991, 30 (10): : 2553 - 2557
  • [24] The Microstructure and High-Strain-Rate Superplasticity of the Al-Mg-Ni-Fe-Mn-Cr-Zr Alloy
    Kishchik, A. A.
    Kotov, A. D.
    Mikhaylovskaya, A. V.
    PHYSICS OF METALS AND METALLOGRAPHY, 2019, 120 (10): : 1006 - 1013
  • [25] Glass formation ability and kinetics of the Gd55Al20Ni25 bulk metallic glass
    Jo, CL
    Xia, L
    Ding, D
    Dong, YD
    CHINESE PHYSICS LETTERS, 2006, 23 (03) : 672 - 674
  • [26] In-situ electron diffraction study of bulk amorphous La55Al25Ni20 in the supercooled liquid region
    Ohkubo, T
    Hiroshima, T
    Hirotsu, Y
    Inoue, A
    Oikawa, T
    MATERIALS TRANSACTIONS JIM, 2000, 41 (11): : 1385 - 1391
  • [27] Easy glass formation in La55Ni20Al25 by Bridgman solidification
    Natl Univ of Singapore, Singapore, Singapore
    Mater Lett, 3-6 (318-321):
  • [28] Easy glass formation in La55Ni20Al25 by Bridgman solidification
    Li, Y
    Ng, SC
    Lu, ZP
    Feng, YP
    MATERIALS LETTERS, 1998, 34 (3-6) : 318 - 321
  • [29] High-strain rate superplasticity due to Newtonian flow of supercooled liquid in bulk glassy alloys
    Inoue, A
    Kawamura, Y
    Zhang, T
    MICRO MATERIALS, PROCEEDINGS, 2000, : 875 - 875
  • [30] Strong liquid behavior of Pr55Ni25Al20 bulk metallic glass
    Meng, Q. G.
    Zhang, S. G.
    Li, J. G.
    Bian, X. F.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2007, 431 (1-2) : 191 - 196