Review

A Review on hydrogen embrittlement behavior of steel structures and measurement methods

Volume: 8 Number: 2 August 20, 2024
EN

A Review on hydrogen embrittlement behavior of steel structures and measurement methods

Abstract

Hydrogen can be found within metals under a variety of industrial and environmental conditions. Hydrogen-metal interactions can take place through hydrogen embrittlement, hydrogen sulfide corrosion, or hydrogen absorption. Steel and other metals that are exposed to hydrogen may experience a difficulty known as hydrogen embrittlement that affects their mechanical properties. The material's ductility and toughness may be reduced as a result of this phenomena, it also increasing the risk of brittle fracture. In steel, atomic hydrogen mainly diffuses into the microstructure of the steel, causing hydrogen embrittlement. Localized weakening of the bonds between the metal atoms might result from hydrogen atoms occupying interstitial positions in the metal lattice. Especially when under stress, this may lead to a more susceptible to fracture and cracking. Concerns with hydrogen embrittlement arise in sectors like aerospace and oil and gas that use high-strength steels. If not appropriately handled, it may result in catastrophic failures. Use of hydrogen-resistant alloys, appropriate heat treatments, and protection from conditions that promote hydrogen uptake are examples of preventive measures. This literature review paper covers the definition of hydrogen embrittlement (HE), mechanisms causing HE, measurement of hydrogen concentration and preventive measures that restrict hydrogen diffusion to the steel.

Keywords

Ethical Statement

There are no possible conflicts of interest that the authors have disclosed about the research, writing, or publication of this article. Additionally, the authors declared that no specific authorization or ethical committee approval was needed for this piece, which was written entirely on its own and in compliance with international publication and research ethics.

References

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  3. 3. Barrera, O., Bombac, D., Chen, Y., Daff, T. D., Galindo-Nava, E., Gong, P., Haley, D., Horton, R., Katzarov, I., Kermode, J. R., Liverani, C., Stopher, M., & Sweeney, F., Understanding and mitigating hydrogen embrittlement of steels: a review of experimental, modelling and design progress from atomistic to continuum. Journal of Materials Science, 2018. 53(9): p. 6251–6290.
  4. 4. Bhadeshia, H. K. D. H., Prevention of hydrogen embrittlement in steels. ISIJ International, 2016. 56(1): p. 24–36.
  5. 5. Campari, A., Ustolin, F., Alvaro, A., & Paltrinieri, N., A review on hydrogen embrittlement and risk-based inspection of hydrogen technologies. International Journal of Hydrogen Energy, 2023. 48(90): p. 35316–35346.
  6. 6. Djukic, M. B., Bakic, G. M., Zeravcic, V. S., & Sedmak, A., The synergistic action and interplay of hydrogen embrittlement mechanisms in steels and iron : Localized plasticity and decohesion. Eng Fracture Mech, 2019. 1065(28): p. 1–10.
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Details

Primary Language

English

Subjects

Material Design and Behaviors, Material Production Technologies

Journal Section

Review

Early Pub Date

August 20, 2024

Publication Date

August 20, 2024

Submission Date

January 3, 2024

Acceptance Date

June 4, 2024

Published in Issue

Year 2024 Volume: 8 Number: 2

APA
Abebe, B. A., & Altuncu, E. (2024). A Review on hydrogen embrittlement behavior of steel structures and measurement methods. International Advanced Researches and Engineering Journal, 8(2), 91-101. https://doi.org/10.35860/iarej.1414085
AMA
1.Abebe BA, Altuncu E. A Review on hydrogen embrittlement behavior of steel structures and measurement methods. Int. Adv. Res. Eng. J. 2024;8(2):91-101. doi:10.35860/iarej.1414085
Chicago
Abebe, Biniyam Ayele, and Ekrem Altuncu. 2024. “A Review on Hydrogen Embrittlement Behavior of Steel Structures and Measurement Methods”. International Advanced Researches and Engineering Journal 8 (2): 91-101. https://doi.org/10.35860/iarej.1414085.
EndNote
Abebe BA, Altuncu E (August 1, 2024) A Review on hydrogen embrittlement behavior of steel structures and measurement methods. International Advanced Researches and Engineering Journal 8 2 91–101.
IEEE
[1]B. A. Abebe and E. Altuncu, “A Review on hydrogen embrittlement behavior of steel structures and measurement methods”, Int. Adv. Res. Eng. J., vol. 8, no. 2, pp. 91–101, Aug. 2024, doi: 10.35860/iarej.1414085.
ISNAD
Abebe, Biniyam Ayele - Altuncu, Ekrem. “A Review on Hydrogen Embrittlement Behavior of Steel Structures and Measurement Methods”. International Advanced Researches and Engineering Journal 8/2 (August 1, 2024): 91-101. https://doi.org/10.35860/iarej.1414085.
JAMA
1.Abebe BA, Altuncu E. A Review on hydrogen embrittlement behavior of steel structures and measurement methods. Int. Adv. Res. Eng. J. 2024;8:91–101.
MLA
Abebe, Biniyam Ayele, and Ekrem Altuncu. “A Review on Hydrogen Embrittlement Behavior of Steel Structures and Measurement Methods”. International Advanced Researches and Engineering Journal, vol. 8, no. 2, Aug. 2024, pp. 91-101, doi:10.35860/iarej.1414085.
Vancouver
1.Biniyam Ayele Abebe, Ekrem Altuncu. A Review on hydrogen embrittlement behavior of steel structures and measurement methods. Int. Adv. Res. Eng. J. 2024 Aug. 1;8(2):91-101. doi:10.35860/iarej.1414085

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