SEARCHING FOR STRUCTURAL AMORPHOUS STEELS

被引:0
|
作者
Bassi, F. [1 ]
Lavorato, G. [1 ]
Moya, J. [1 ]
Sirkin, H. [1 ]
机构
[1] Consejo Nacl Invest Cient & Tecn, FIUBA, INTECIN, RA-1033 Buenos Aires, DF, Argentina
关键词
D O I
暂无
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
During the last four decades amorphous metallic alloys (with neither crystalline structure nor grains and grain boundaries) with thickness in the order of micrometers have been produced. These thicknesses are required in order to reach cooling rates necessary to avoid crystallisation. Increasing the thickness of these amorphous systems (with the corresponding reduction in cooling rates) with the propose of using them as structural materials has been a constant challenge to science and materials engineering. Commonly known as Bulk Metallic Glasses (BMGs), various alloys have been studied in Pd, Au, La, Zr, Mg based systems, mostly since 1989. As a result of these studies, amorphous materials between 0.5 and 72 mm thick have been obtained and are being used for commercial products since 1992. Fe-based BMGs, first developed in 1995, have regained special interest because of their unusual mechanical and physical properties such as high strength and hardness (3000-5500 MPa and 850-1370 Hv respectively), excellent magnetic properties, strong corrosion resistance, high thermal stability and, in same cases, low material cost. These systems are also called Structural Amorphous Steels (SASs) and a thickness of 16 mm can be obtained nowadays when using a composition of Fe41Co7Cr15Mo14C15B6Y2 (at.%). In the present work we make a brief description of state of the art in BMGs and SASs; their mechanical properties and technological employments are commented. We also analyze the theoretical models and empirical rules used to obtain BMG. Finally, we present our preliminary results when using the FeCoSiBNb amorphous system with a thickness of 2.5 mm. X-ray diffraction, differential thermal analysis and Vickers microhardness were employed as characterization methods.
引用
收藏
页码:1301 / 1312
页数:12
相关论文
共 50 条
  • [41] Constitutive equation for structural steels
    Xu, S
    Bouchard, R
    Tyson, WR
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2004, 35A (04): : 1410 - 1414
  • [42] Searching for Bionics Structural Forms Optimization
    Gawell, Ewelina
    Nowak, Anna
    Rokicki, Wieslaw
    3RD WORLD MULTIDISCIPLINARY CIVIL ENGINEERING, ARCHITECTURE, URBAN PLANNING SYMPOSIUM (WMCAUS 2018), 2019, 471
  • [43] ULTRAHIGH STRENGTH STRUCTURAL STEELS
    HALL, AM
    DESIGN NEWS, 1971, 26 (07) : 131 - &
  • [44] PEARLITE REDUCED STRUCTURAL STEELS
    DUCKWORTH, WE
    PHILLIPS, R
    CHAPMAN, JA
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1965, 203 : 1108 - +
  • [45] Fracture Surfaces of Structural Steels
    A. A. Ezhov
    L. P. Gerasimova
    A. M. Katok
    Metal Science and Heat Treatment, 2004, 46 : 170 - 175
  • [46] FRACTURE TOUGHNESS OF STRUCTURAL STEELS
    CORDEROY, DJ
    MUIR, H
    JOURNAL OF THE AUSTRALASIAN INSTITUTE OF METALS, 1968, 13 (03): : 179 - &
  • [47] Constitutive equation for structural steels
    S. Xu
    R. Bouchard
    W. R. Tyson
    Metallurgical and Materials Transactions A, 2004, 35 : 1410 - 1414
  • [48] HIGH STRENGTH STRUCTURAL STEELS
    SANDERSO.L
    DOCK & HARBOUR AUTHORITY, 1969, 49 (582): : 465 - &
  • [49] Fracture surfaces of structural steels
    Ezhov, AA
    Gerasimova, LP
    Katok, AM
    METAL SCIENCE AND HEAT TREATMENT, 2004, 46 (3-4) : 170 - 175
  • [50] CONTROLLED ROLLING OF STRUCTURAL STEELS
    IRVINE, KJ
    GLADMAN, T
    ORR, J
    PICKERIN.FB
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1970, 208 : 717 - &