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A Study on the Hydriding Reaction of Pre-oxidized Zr Alloys

산화막을 입힌 지르코늄 합금의 수소화 반응에 관한 연구

  • Kim, Sun-Ki (Innovative Nuclear Fuel Division, Korea Atomic Energy Research Institute) ;
  • Bang, Je-Geon (Innovative Nuclear Fuel Division, Korea Atomic Energy Research Institute) ;
  • Kim, Dae-Ho (Innovative Nuclear Fuel Division, Korea Atomic Energy Research Institute) ;
  • Lim, Ik-Sung (Innovative Nuclear Fuel Division, Korea Atomic Energy Research Institute) ;
  • Yang, Yong-Sik (Innovative Nuclear Fuel Division, Korea Atomic Energy Research Institute) ;
  • Song, Kun-Woo (Innovative Nuclear Fuel Division, Korea Atomic Energy Research Institute)
  • 김선기 (한국원자력연구원 선진핵연료기술개발부) ;
  • 방제건 (한국원자력연구원 선진핵연료기술개발부) ;
  • 김대호 (한국원자력연구원 선진핵연료기술개발부) ;
  • 임익성 (한국원자력연구원 선진핵연료기술개발부) ;
  • 양용식 (한국원자력연구원 선진핵연료기술개발부) ;
  • 송근우 (한국원자력연구원 선진핵연료기술개발부)
  • Published : 2010.03.31

Abstract

This paper presents some experimental results on incubation time for massive hydriding of Zr alloys with oxide thickness. Oxide effects experiments on massive hydriding reaction of commercial Zr alloy claddings and pre-oxidized Zr alloys with hydrogen gas were carried out in the temperature range from 300 to $400^{\circ}C$ with thermo-gravimetric apparatus. Experimental results for oxide effects on massive hydriding kinetics show that incubation time is not proportional to oxide thickness and that the massive hydriding kinetics of pre-filmed Zr alloys follows linear kinetic law and the hydriding rate are similar to that of oxide-free Zr alloys once massive hydriding is initiated. There was a difference in micro-structures between oxide during incubation time and oxide after incubation time. Physical defects such as micro-cracks and pores were observed in only oxide after incubation time. Therefore, the massive hydriding of Zr alloys seems to be ascribed to short circuit path, mechacical or physical defects, such as micro-cracks and pores in the oxide rather than hydrogen diffusion through the oxide resulting from the increase of oxygen vacancies in the hypostoichiometric oxide.

Keywords

References

  1. L. Lunde, “Localized or Uniform Hydriding of Zircaloy: Some Observation on the Effect of Surface Condition,” J. Nucl. Mater., 44 241-44 (1972). https://doi.org/10.1016/0022-3115(72)90102-X
  2. K. Une, “Kinetics of Reaction of Zirconium Alloy with Hydrogen,” J. Less-Common Met., 57 93-8 (1978). https://doi.org/10.1016/0022-5088(78)90165-0
  3. G. Meyer and M. Kobrinsky, J. P. Abriata, and J. C. Bolcich, “Hydriding Kinetics of Zircaloy-4 in Hydrogen Gas”, J. Nucl. Mater., 229 45-51 (1996).
  4. J. Bloch, I. Jacob, and M. H. Mintz, “The Effect of Vacuum Annealing on the Hydriding Kinetics of Zirconium,” J. Alloys and Compounds, 191 177-84 (1993).
  5. R. P. Marshall, “Absorption of Gaseous Hydrogen by Zircaloy-2,” J. Less-Common Met., 13 43-9 (1967).
  6. D. W. Shannon, “Effect of Oxidation Rate on Hydriding of Zirconium Alloys in Gas Mixtures Containing Hydrogen,” Corrosion, 19 414-20 (1963).
  7. B. Cox, “Mechanisms of Hydrogen Absorption by Zirconium Alloys,” AECL-8702 (1985).
  8. S. Aronson, “Some Experiments on the Permeation of Hydrogen through Oxide Films on Zirconium,” WAPD-BT-19 (1960).
  9. T. Smith, “Kinetics and Mechanism of Hydrogen Permeation of Oxide Films on Zirconium,” J. Nucl. Mater., 18 323-30 (1966). https://doi.org/10.1016/0022-3115(66)90173-5