Deformation behavior and mechanisms of a nanocrystalline multi-phase aluminum alloy

被引:0
|
作者
Leon L. Shaw
Hong Luo
机构
[1] University of Connecticut,Department of Materials Science and Engineering
来源
关键词
Al3Ti; Dynamic Recovery; Intermetallic Particle; Lattice Dislocation; Offset Yield Strength;
D O I
暂无
中图分类号
学科分类号
摘要
A nanocrystalline (nc) Al–Fe–Cr–Ti alloy containing 30 vol.% nc intermetallic particles has been used to investigate deformation behavior and mechanisms of nc multi-phase alloys. High compressive strengths at room and elevated temperatures have been demonstrated. However, tensile fracture strengths below 300 °C are lower than the corresponding maximum strengths in compression. Creep flow of the nc fcc-Al grains is suppressed even though rapid dynamic recovery has occurred. It is argued that the compressive strength at ambient temperature is controlled by propagation of dislocations into nc fcc-Al grains, whereas the compressive strength at elevated temperature is determined by dislocation propagation as well as dynamic recovery. The low tensile fracture strengths and lack of ductility at temperatures below 300 °C are attributed to the limited dislocation storage capacity of nanoscale grains. Since the deformation of the nc Al-alloy is controlled by dislocation propagation into nc fcc-Al grains, the smaller the grain size, the higher the strength. This new microstructural design methodology coupled with ductility-improving approaches could present opportunities for exploiting nc materials in structural applications at both ambient and elevated temperatures.
引用
收藏
页码:1415 / 1426
页数:11
相关论文
共 50 条
  • [21] Cyclic deformation behavior of a cast aluminum alloy
    Emami, A. R.
    Begum, S.
    Chen, D. L.
    Skszek, T.
    Niu, X. P.
    Zhang, Y.
    Gabbianelli, F.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2009, 516 (1-2): : 31 - 41
  • [22] Deformation behavior of a modified 5083 aluminum alloy
    Kaibyshev, R
    Musin, F
    Motohashi, Y
    CREEP DEFORMATION: FUNDAMENTALS AND APPLICATIONS, 2002, : 319 - 327
  • [23] Superplastic deformation behavior of 7075 aluminum alloy
    Sahraoui, T
    Hadji, M
    Bacha, N
    Badji, R
    JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2003, 12 (04) : 398 - 401
  • [24] Deformation behavior of a modified 5083 aluminum alloy
    Kaibyshev, R
    Musin, F
    Avtokratova, E
    Motohashi, Y
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2005, 392 (1-2): : 373 - 379
  • [25] Hot-working behavior of an advanced intermetallic multi-phase γ-TiAl based alloy
    Schwaighofer, Emanuel
    Clemens, Helmut
    Lindemann, Janny
    Stark, Andreas
    Mayer, Svea
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2014, 614 : 297 - 310
  • [26] Deterioration behavior of a multi-phase vanadium-based solid solution alloy electrode
    Kuriyama, N
    Tsukahara, M
    Takahashi, K
    Yoshinaga, H
    Takeshita, HT
    Sakai, T
    JOURNAL OF ALLOYS AND COMPOUNDS, 2003, 356 : 738 - 741
  • [27] Deterioration behavior of a multi-phase vanadium-based solid solution alloy electrode
    Kuriyama, N. (kuriyama-n@aist.go.jp), 1600, Elsevier Ltd (356-357):
  • [28] Near-Iinear elastic deformation behavior of a novel Zr-Ti-Nb-Sn alloy with multi-phase microstructures of β,α" and α' phases
    Wen Ma
    Hao Huang
    Wang Ding
    Shun Guo
    Hai-Xia Liu
    Xiao-Nong Cheng
    Rare Metals, 2023, (05) : 1670 - 1677
  • [29] Near-linear elastic deformation behavior of a novel Zr-Ti-Nb-Sn alloy with multi-phase microstructures of β, α″ and α′ phases
    Wen Ma
    Hao Huang
    Wang Ding
    Shun Guo
    Hai-Xia Liu
    Xiao-Nong Cheng
    Rare Metals, 2023, 42 : 1670 - 1677
  • [30] Near-linear elastic deformation behavior of a novel Zr-Ti-Nb-Sn alloy with multi-phase microstructures of β, a? and a' phases
    Ma, Wen
    Huang, Hao
    Ding, Wang
    Guo, Shun
    Liu, Hai-Xia
    Cheng, Xiao-Nong
    RARE METALS, 2023, 42 (05) : 1670 - 1677