Experimental investigation of the Zn–Fe–V system at 450°C
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Changjun Wu
, Xuping Su , Daniel Liu , Xinming Wang , Fucheng Yin , Zhongxi Zhu und Zhi Li
Abstract
The 450°C isothermal section of the ZnüFeüV ternary phase diagram has been determined experimentally using X-ray diffraction and scanning electron microscopy coupled with energy/wave dispersive spectroscopy. A new ternary compound T, containing 1.4 to 4.5 at.% V, 5.6 to 15.5 at.% Fe and 82.3 to 92.2 at.% Zn, was positively identified for the first time in this study. The existence of the rphase, together with two ZnüV compounds, VZn3 and V4Zn5, at 450°C has been confirmed. Fe has no detectable solubility in ZnüV compounds. But it was proved that about 3.0 at.% Zn can dissolve into α-V at 450°C. Experimental results indicated that the maximum solubility of V in d, γ1, and γ was 0.5 at.%, 1.3 at.% and 1.8 at.% respectively, whereas that in ζ was less than 0.2 at.%.
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© 2010, Carl Hanser Verlag, München
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- Basic
- High-temperature in-situ microscopy during stress-induced phase transformations in Co49Ni21Ga30 shape memory alloy single crystals
- Contents
- contents
- Editorial
- Editorial December 2010
- Basic
- Atomic mobilities and diffusivities in the fcc, L12 and B2 phases of the Ni-Al system
- Experimental investigation of the Zn–Fe–V system at 450°C
- Time resolved X-ray imaging of eutectic cellular patterns evolving during solidification of ternary Al–Cu–Ag alloys
- Reassessment of the Mg–Ge binary system using CALPHAD supported by first-principles calculation
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