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Corrosion Engineering, Science and Technology
The International Journal of Corrosion Processes and Corrosion Control
Volume 57, 2022 - Issue 3
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Research Articles

Negative effect of Hf and Zr co-doping on alumina film growth of nickel-aluminium single-crystals during thermal cyclic oxidation

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Pages 214-222 | Received 06 Aug 2021, Accepted 02 Dec 2021, Published online: 21 Dec 2021
 

ABSTRACT

The microstructure and cyclic oxidation behaviour of Hf and Zr co-doped B2 NiAl single-crystal alloys at 1473 K were investigated. Hf and Zr co-precipitated into one phase during alloy manufacturing. The RE-free single-crystal alloy obtained a double-layered alumina film comprised of outer equiaxed grains and inner columnar grains and exhibited lower oxidation rate than the corresponding poly-crystal alloy, while the co-doped single-crystal alloy displayed higher oxidation rate than the RE-free single-crystal alloy and no synergistic effect was discovered. The effect of Hf and Zr co-doping on the growth behaviour of the alumina film was discussed. It is proposed that the existence of grain boundaries is an important precondition for activating the reactive element effect. The absence of grain boundaries significantly weakened the positive effect of Hf and Zr co-doping and distinctly magnified its negative effect on the cyclic oxidation resistance of the alloy in the meantime.

Highlights

  • Cyclic oxidation behaviour of Hf and Zr co-doped NiAl single-crystals is compared.

  • The undoped alloy obtains a double-layered alumina film during oxidation.

  • The co-doped alloy shows higher alumina film growth rate than the undoped alloy.

  • The absence of alloy grain boundaries suppresses the reactive element effect.

Acknowledgements

This work is sponsored by Basic Research Program of State Grid under grant No. GCB17201900164.

Disclosure statement

No potential conflict of interest was reported by the author(s).

Additional information

Funding

This work was supported by Basic Research Program of State Grid [grant number GCB17201900164].

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