화학공학소재연구정보센터
Korean Journal of Materials Research, Vol.28, No.7, 428-434, July, 2018
중성의 염화물 환경 내 자동차용 초고강도강의 부식반응에 기인한 수소원자의 발생 및 투과 메커니즘
Mechanistic Studies on the Hydrogen Evolution and Permeation of Ultra-Strong Automotive Steel in Neutral Chloride Environments
E-mail:
Hydrogen evolution on a steel surface and subsequent hydrogen diffusion into the steel matrix are evaluated using an electrochemical permeation test with no applied cathodic current on the hydrogen charging side. In particular, cyclic operation in the permeation test is also conducted to clarify the corrosion-induced hydrogen evolution behavior. In contrast to the conventional perception that the cathodic reduction reaction on the steel in neutral aqueous environments is an oxygen reduction reaction, this study demonstrates that atomic hydrogen may be generated on the steel surface by the corrosion reaction, even in a neutral environment. Although a much lower permeation current density and significant slower diffusion kinetics of hydrogen are observed compared to the results measured in acidic environments, they contribute to the increase in the embrittlement index. This study suggests that the research on hydrogen embrittlement in ultra-strong steels should be approached from the viewpoint of corrosion reactions on the steel surface and subsequent hydrogen evolution/diffusion behavior.
  1. Mukai Y, Kobelco Technol. Rev., 26, 26 (2005)
  2. Brauser S, Pepke LA, Weber G, Rethmeier M, Mater. Sci. Eng. A-Struct. Mater. Prop. Microstruct. Process., 527, 7099 (2010)
  3. Hirth JP, Metall. Trans. A, 11A, 861 (1980)
  4. Wang M, Akiyama E, Tsuzaki K, Scr. Mater., 52, 403 (2005)
  5. Sandoz G, Met. Trans., 3, 1169 (1972)
  6. Takagi S, Toji Y, Yoshino M, Hasegawa K, ISIJ Int., 52, 316 (2012)
  7. Lovicu G, Bottazzi M, D’Aiuto F, Sanctis MD, Dimatteo A, Santus C, Valentini R, Metall. Mater. Trans. A-Phys. Metall. Mater. Sci., 43, 4075 (2012)
  8. Shiraga T, Ishikawa N, Ishiguro M, Yamashita E, Mizoguchi S, Tetsu-to-Hagane, 82, 177 (1996)
  9. Li J, Wu JS, Wang ZH, Zhang SQ, Wu XG, Huang YH, Li XG, Int. J. Hydrog. Energy, 42(34), 22175 (2017)
  10. Komazaki S, Koyama A, Misawa T, Mater. Trans., 43, 2213 (2002)
  11. Bhadeshia HKDH, ISIJ Int., 56, 24 (2016)
  12. Zhu X, Li W, Hsu TY, Zhou S, Wang L, Jin X, Scr. Mater., 97, 21 (2015)
  13. Hwang EH, Seong HG, Kim SJ, Korean J. Met. Mater., to be submitted (2018).
  14. ISO 17081, Method of Measurement of Hydrogen Permeation and Determination of Hydrogen Uptake and ransport in Metals by an Electrochemical Technique (2004).
  15. Kim SJ, Kim KY, Scr. Mater., 66, 1069 (2012)
  16. ASTM G129, Standard Practice for Slow Strain Rate Testing to Evaluate the Susceptibility of Metallic Materials to Environmentally Assisted Cracking (2013).
  17. Kim SJ, Park JS, Hwang EH, Ryu SM, Seong HG, Cho YR, Int. J. Hydrogen Energy, to be submitted (2018).
  18. Tsuru T, Huang Y, Ali MR, Nishikata A, Corrosion Sci., 47, 2431 (2005)
  19. Akiyama E, Matsukado K, Wang M, Tsuzaki K, Corrosion Sci., 52, 2758 (2010)
  20. Akiyama E, Matsukado K, Li SJ, Tsuzaki K, Appl. Surf. Sci., 257(19), 8275 (2011)
  21. Kamimura T, Hara S, Miyuki H, Yamashita M, Uchida M, Corrosion Sci., 48, 2799 (2006)