Bulk and interface boundary diffusion in group IV hexagonal close-packed metals and alloys

被引:0
|
作者
C. Herzig
S. Divinski
Y. Mishin
机构
[1] Münster University,the Institute of Material Physics
[2] George Mason University,the School of Computational Sciences
关键词
Material Transaction; Grain Boundary; Interphase Boundary; Solute Diffusion; Activation Enthalpy;
D O I
暂无
中图分类号
学科分类号
摘要
Bulk and grain boundary (GB) self-diffusion and substitutional solute diffusion in group IV hexagonal close-packed (hcp) metals (α-Ti, α-Zr, and α-Hf) are reviewed. The recent results obtained on high-purity materials are shown to approach closely the “intrinsic” diffusion characteristics. The enhancement effect of fast-diffusing impurities (such as Fe, Ni, or Co) is discussed for both self- and substitutional bulk solute diffusion in terms of the interstitial solubility of the impurity atoms. In GB self-diffusion, the impurity effect is found to be less dramatic. The results obtained on high-purity hcp materials can be interpreted in terms of intrinsically ‘normal’ vacancy-mediated GB diffusion, with the ratio of GB to volume diffusion activation enthalpies of Qgb/Q ≈ 0.6. The GB self-diffusion in group IV hcp metals reveals distinct systematics. Bulk self-diffusion and fast interstitial solute diffusion (Fe and Ni) in the hcp phase α2-Ti3Al are reviewed. Interphase boundary diffusion of Ti in the unidirectional lamellar α2/γ structure of the two-phase Ti48Al52 alloy is analyzed with respect to the phase boundary structure and GB self-diffusion in α2-Ti3Al.
引用
收藏
页码:765 / 775
页数:10
相关论文
共 50 条
  • [1] Bulk and interface boundary diffusion in group IV hexagonal close-packed metals and alloys
    Herzig, C
    Mishin, Y
    Divinski, S
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2002, 33 (03): : 765 - 775
  • [2] Editorial: Hexagonal Close-Packed Metals and Alloys: Processing, Microstructure and Properties
    Chen, Liang-Yu
    Chai, Linjiang
    Zhang, Lai-Chang
    FRONTIERS IN MATERIALS, 2021, 8
  • [3] twin nucleation at prismatic/basal boundary in hexagonal close-packed metals
    Zhou, Nian
    Zhang, Gang
    Guo, Tian Fu
    Guo, Xu
    Tang, Shan
    Huang, Xiaoxu
    PHILOSOPHICAL MAGAZINE, 2019, 99 (20) : 2584 - 2603
  • [4] LATTICE DYNAMICS OF HEXAGONAL CLOSE-PACKED METALS
    SLUTSKY, LJ
    GARLAND, CW
    JOURNAL OF CHEMICAL PHYSICS, 1957, 26 (04): : 787 - 793
  • [5] LATTICE DYNAMICS OF HEXAGONAL CLOSE-PACKED METALS
    TROTT, AJ
    HEALD, PT
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1971, 46 (01): : 361 - &
  • [6] SURFACE DYNAMICS OF HEXAGONAL CLOSE-PACKED METALS
    KWASNIOK, F
    SURFACE SCIENCE, 1995, 329 (1-2) : 90 - 100
  • [7] Void ordering in hexagonal close-packed metals
    Klemm, Th.
    Frank, W.
    Applied Physics A: Materials Science and Processing, 1996, 63 (01): : 19 - 29
  • [8] Void ordering in hexagonal close-packed metals
    Klemm, T
    Frank, W
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 1996, 63 (01): : 19 - 29
  • [9] CLOSE-PACKED HEXAGONAL ALLOYS OF IRON AND NITROGEN
    HUMEROTHERY, W
    PHILOSOPHICAL MAGAZINE, 1962, 7 (83): : 1955 - &
  • [10] THE BAND STRUCTURE OF HEXAGONAL CLOSE-PACKED METALS - ZIRCONIUM
    ALTMANN, SL
    BRADLEY, CJ
    PHYSICS LETTERS, 1962, 1 (08): : 336 - 337