Influence of defects, surface roughness and HIP on the fatigue strength of Ti-6Al-4V manufactured by additive manufacturing
暂无分享,去创建一个
T. Uchida | H. Yagura | H. Masuo | Y. Tanaka | Shotaro Morokoshi | Yasuhiro Yamamoto | Y. Murakami | Hiroshige Masuo | Y. Yamamoto | Yuzo Tanaka
[1] S. Nemat-Nasser,et al. Growth and stability of interacting surface flaws of arbitrary shape , 1983 .
[2] Y. Murakami,et al. Effects of defects, inclusions and inhomogeneities on fatigue strength , 1994 .
[3] Y. Murakami,et al. Small Defects and Inhomogeneities in Fatigue Strength: Experiments, Models and Statistical Implications , 1999 .
[4] Y. Murakami. Metal Fatigue: Effects of Small Defects and Nonmetallic Inclusions , 2002 .
[5] D. Eifler,et al. Notch Effects in High Cycle Fatigue of Ti-6Al-4V , 2013 .
[6] Brent Stucker,et al. Analysis of defect generation in Ti–6Al–4V parts made using powder bed fusion additive manufacturing processes , 2014 .
[7] Thomas Tröster,et al. Fatigue Strength Prediction for Titanium Alloy TiAl6V4 Manufactured by Selective Laser Melting , 2015, Metallurgical and Materials Transactions A.
[8] Galina Kasperovich,et al. Improvement of fatigue resistance and ductility of TiAl6V4 processed by selective laser melting , 2015 .
[9] John J. Lewandowski,et al. Overview of Materials Qualification Needs for Metal Additive Manufacturing , 2016 .
[10] Nam Phan,et al. Critical assessment of the fatigue performance of additively manufactured Ti–6Al–4V and perspective for future research , 2016 .
[11] M. Åman. Interaction effect of adjacent small defects on fatigue limit of a medium carbon steel , 2016 .
[12] Michael Gschweitl,et al. Qualification of AM parts: Extreme value statistics applied to tomographic measurements , 2017 .
[13] Y. Murakami,et al. Defect Analysis and Fatigue Design Basis for Ni-based Superalloy 718 manufactured by Additive Manufacturing , 2017 .
[14] T. Niendorf,et al. Fatigue life of additively manufactured Ti–6Al–4V in the very high cycle fatigue regime , 2017 .
[15] Carol Johnston. Statistical Analysis of Fatigue Test Data , 2017 .
[16] Y. Nadot,et al. Influence of defect size on the fatigue resistance of AlSi10Mg alloy elaborated by selective laser melting (SLM) , 2017 .
[17] E. Maire,et al. Fatigue properties of EBM as-built and chemically etched thin parts , 2017 .
[18] Stefano Beretta,et al. Fatigue properties of AlSi10Mg obtained by additive manufacturing: Defect-based modelling and prediction of fatigue strength , 2017 .
[19] U. Zerbst,et al. Damage development and damage tolerance of structures manufactured by selective laser melting – a review , 2017 .
[20] S. Beretta,et al. A comparison of fatigue strength sensitivity to defects for materials manufactured by AM or traditional processes , 2017 .
[21] J. Buffière,et al. Location, location & size: defects close to surfaces dominate fatigue crack initiation , 2017, Scientific Reports.
[22] A. Fatemi,et al. Fatigue Design with Additive Manufactured Metals: Issues to Consider and Perspective for Future Research , 2018 .