Formation mechanism of the distinctive granular fracture surface in subsurface fracture of Ti6Al4V alloy
Author:
Funder
Japan Society for the Promotion of Science
Publisher
Elsevier BV
Subject
General Materials Science
Reference35 articles.
1. Gigacycle Fatigue in Mechanical Practice;Bathias,2007
2. H.-J. Christ, (Ed.) Preface. In fatigue of materials at very high numbers of loading cycles; Springer Fachmedien: Wiesbaden, Germany, 2018.
3. Crack growth in the gigacycle fatigue regime for helicopter gears;Shaniavski;Fatigue Fract. Eng. Mater. Struct.,1999
4. Gigacycle fatigue of metallic aircraft components;Bathias;Int J Fatigue,2010
5. Fatigue behavior of die casting aluminum alloys in air and vacuum;Ueno;Procedia Eng.,2010
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1. New insights into microstructure refinement in crack initiation region of very-high-cycle fatigue for SLM Ti-6Al-4V via precession electron diffraction;Materialia;2024-03
2. Nanograin formation mechanism under fatigue loadings in additively manufactured Ti-6Al-4V alloy;International Journal of Fatigue;2023-10
3. Very high cycle fatigue behavior of laser powder bed fusion additively manufactured Ti6Al4V alloy at elevated temperature;International Journal of Fatigue;2023-06
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