PSI - Issue 14

Takuya Yoshimoto et al. / Procedia Structural Integrity 14 (2019) 18–25 Author name / Structural Integrity Procedia 00 (2018) 000 – 000

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References

Matsunaga, H., Usuda, T., Yanase, K., Endo, M., 2013. Ductility loss in Hydrogen-charged Ductile Cast Iron. 13th International Conference on Feacture. Matsunaga, H., Usuda, T., Yanase, K., Endo, M., 2014. Ductility Loss in Ductile Cast Iron with Internal Hydrogen. Metallurgical and Materials Transactions A 45, 1315-1326. Matsuo, T., 2017. The effect of pearlite on the hydrogen-induced ductility loss in ductile cast irons. Journal of Physics: Conference Series 843 012012 Michler, T., Naumann, J., 2010. Microstructural aspects upon hydrogen environment embrittlement of various bcc steels. Internal Journal of hydrogen energy 35, 821-832. Murakami, Y., Matsunaga, H., 2006.The effect of hydrogen on fatigue properties of steels used for fuel cell system. International Journal of Fatigue 28, 1509-1520 Murakami, Y., Matsuoka, S., Kondo, Y., Nishimura, S., 2012. Mechanism of hydrogen embrittlement and guide for fatigue design. Yokendo, Tokyo. Nagumo, M., 2008. Fundamentals of hydrogen embrittlement. Uchida Rokakuho, Tokyo. Ogawa, T., Matsuo, T., Endo, M., 2015. Effects of hydrogen in Graphite on the Tensile Properties of Hydrogen-Charged Ductile Cast Iron. Transactions of the Japan Society of Mechanical Engineers 68, 93-94. San Marchi, C., Michler, T., Nibur, K.A., Somerday, B.P., 2010. On the physical difference between tensile testing of type 304 and 316 austenitic stainless steels with internal hydrogen and in external hydrogen. Internal Journal of hydrogen energy 35, 9736-9745. Takai, K., Chiba, Y., Noguchi, K., Nozue, A., 2002. Visualization of the hydrogen desorption process from ferrite, pearlite, and graphite by secondary ion mass spectrometry. Metallurgical and Materials Transactions A 33, 2659-2665.

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