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

被引:0
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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;
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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.
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页码:765 / 775
页数:10
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