PSI - Issue 57

Lewis Milne et al. / Procedia Structural Integrity 57 (2024) 365–374 Lewis Milne et al. / Structural Integrity Procedia 00 (2019) 000 – 000

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BSI, 2017. BS ISO 1099:2017 Metallic Materials — Fatigue Testing — Axial Force-Controlled Method . Geneva. European Committee for Standardization, 2019. EN 10025-2: Hot Rolled Products of Structural Steels — Part 2: Technical Delivery Conditions for Non-Alloy Structural Steels . Brussels, Belgium. Fitzka, Michael, Bernd M. Schönbauer, Robert K. Rhein, Niloofar Sanaei, Shahab Zekriardehani, Srinivasan Arjun Tekalur, Jason W. Carroll, and Herwig Mayer, 2021. Usability of Ultrasonic Frequency Testing for Rapid Generation of High and Very High Cycle Fatigue Data. Materials 14 (9). Gorash, Yevgen, Tugrul Comlekci, Gary Styger, James Kelly, and Frazer Brownlie, 2022. Investigation of S275JR+AR Structural Steel Fatigue Performance in Very High Cycle Domain. Procedia Structural Integrity 38 : 490 – 96. Gorash, Yevgen, Tugrul Comlekci, Gary Styger, James Kelly, Frazer Brownlie, and Lewis Milne, 2023. Ultrasonic Fatigue Testing of Structural Steel S275JR + AR with Insights into Corrosion , Mean Stress and Frequency Effects. Materials 16 (5): 1799. Hart, E.W, 1967. Theory of the Tensile Test. Acta Metallurgica 15 (2): 351 – 55. Hong, Youshi, and Chengqi Sun, 2017. The Nature and the Mechanism of Crack Initiation and Early Growth for Very-High-Cycle Fatigue of Metallic Materials – An Overview. Theoretical and Applied Fracture Mechanics 92 : 331 – 50. Klusák, Jan, Vít Horník, Grzegorz Lesiuk, and Stanislav Seitl, 2021. Comparison of High- and Low-Frequency Fatigue Properties of Structural Steels S355J0 and S355J2. Fatigue Fract Eng Mater Struct 44 (11): 3202 – 13. Milne, Lewis, Yevgen Gorash, Tugrul Comlekci, and Donald Mackenzie, 2022. Frequency Effects in Ultrasonic Fatigue Testing (UFT) of Q355B Structural Steel. Procedia Structural Integrity 42 (2022): 623 – 30. Mughrabi, H., K. Herz, and X. Stark, 1981. Cyclic Deformation and Fatigue Behaviour of α -Iron Mono-and Polycrystals. Int J Fract 17 (2): 193 – 220. Nonaka, Isamu, Sota Setowaki, and Yuji Ichikawa, 2014. Effect of Load Frequency on High Cycle Fatigue Strength of Bullet Train Axle Steel. Int J Fatigue 60 : 43 – 47. Pu, Xiaoxue, Johann Petit, Isabelle Darbord-Ranc, and Danièle Wagner, 2019. Thermal Response of Iron and C-Mn Steels with Different Ferrite/Pearlite Phase Fraction under Ultrasonic Fatigue Loading. Materials Science and Engineering A 749 (August 2018): 96 – 105. Standardization Administration of China, 2018. GB/T 1591-2018 High Strength Low Alloy Structural Steels . The Japan Welding Engineering Society, 2017. WES 1112:2017 Standard Test Method for Ultrasonic Fatigue Testing of Metallic Materials . Tokyo, Japan. Torabian, Noushin, Véronique Favier, Justin Dirrenberger, Frédéric Adamski, Saeed Ziaei-Rad, and Nicolas Ranc, 2017. Correlation of the High and Very High Cycle Fatigue Response of Ferrite Based Steels with Strain Rate-Temperature Conditions. Acta Mater 134 : 40 – 52. Tridello, A., C. Boursier Niutta, F. Berto, and D. S. Paolino, 2021. Size-Effect in Very High Cycle Fatigue: A Review. Int J Fatigue 153 . Tsutsumi, Noriko, Y. Murakami, and V. Doquet, 2009. Effect of Test Frequency on Fatigue Strength of Low Carbon Steel. Fatigue Fract Eng Mater Struct 32 (6): 473 – 83.

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