PSI - Issue 19

Kiyotaka Masaki / Procedia Structural Integrity 19 (2019) 168–174 Kiyotaka MASAKI/ Structural Integrity Procedia 00 (2019) 000–000

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Nishijima, T., 1980. Statistical Analysis of Fatigue Test Data. Journal of Society of Materials Science, Japan 29, 24–29. Nan, Z., Ishihara, S., Goshima, T., Nakanishi, R., 2004. Fatigue Behavior of AZ31 Extruded Magnesium Alloy in Laboratory Air, Transactions of the Japan Society of Mechanical Engineers A70, 1146 – 1152. Shiozawa, K., Nagata, K., 2009. Effect of Stress Ratio on High Cycle Fatigue Properties of Extruded AZ61 Magnesium Alloy, Journal of the Society of Materials Science, Japan 58, 982–989. Shiozawa, K., Ikeda, A., Fukumori, T., 2013. Effect of Stress Ratio and Loading Mode on High Cycle Fatigue Performances of Extruded Magnesium Alloys, Transactions of the Japan Society of Mechanical Engineers A79, 1366 – 1381. Shiozawa, K., Kashiwagi, T., Murai, T., Takahashi, T., 2010. Fatigue Behavior and Fractography of Extruded AZ80 Magnesium Alloys in Very High Cycle Regime, Procedia Engineering 2, 183 – 191. Zhang, P., Lindemann, J., 2005. Influence of Shot Peening on High Cycle Fatigue Properties of the High-strength Wrought Magnesium Alloy AZ80, Scripta Materialia 52, 485 – 490.

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