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Articles

Microstructural changes in austenitic stainless steels resulting from cathodic charging of hydrogen

Pages 1140-1148 | Published online: 18 Jul 2013

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D. Hardie & D. Dong. (1994) Effect of hydrogen on ductility of stable austenitic steel. British Corrosion Journal 29:2, pages 156-160.
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Articles from other publishers (8)

Hong Luo, Bo Zhao, Zhimin Pan, Yu Fu & Xiaogang Li. (2021) Hydrogen induced microstructure evolution and cracking mechanism in a metastable dual-phase high-entropy alloy. Materials Science and Engineering: A 819, pages 141490.
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Paul Rozenak. (2013) Stress Induce Martensitic Transformations in Hydrogen Embrittlement of Austenitic Stainless Steels. Metallurgical and Materials Transactions A 45:1, pages 162-178.
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Valentin G. Gavriljuk, Bela D. Shanina, Vladyslav N. Shyvanyuk & Sergey M. Teus. (2013) Hydrogen embrittlement of austenitic steels: electron approach. Corrosion Reviews 31:2, pages 33-50.
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S.M. Teus, V.N. Shyvanyuk & V.G. Gavriljuk. (2008) Hydrogen-induced γ→ɛ transformation and the role of ɛ-martensite in hydrogen embrittlement of austenitic steels. Materials Science and Engineering: A 497:1-2, pages 290-294.
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C. Dagbert, M. Sehili, M. Jerome, J. Galland & L. Hyspecka. (1996) Behaviour of hydrogen in FeNiC alloys. Acta Materialia 44:2, pages 781-787.
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Daniel P. Abraham & Carl J. Altstetter. (1995) The effect of hydrogen on the yield and flow stress of an austenitic stainless steel. Metallurgical and Materials Transactions A 26:11, pages 2849-2858.
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A. Zielinski. (1990) Effect of hydrogen on internal friction of some F.C.C. metals. Acta Metallurgica et Materialia 38:12, pages 2573-2582.
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S.C. Tjong & N.J. Ho. (1988) Transmission electron microscopy observations of strain-induced martensitic formation in fatigued Fe21Mn2.5Al alloy. Materials Science and Engineering: A 102:1, pages 125-130.
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