Deriving a Continuous Fatigue Life Curve from LCF to VHCF

作者: Rainer Wagener , Tobias Melz

DOI: 10.4271/2017-01-0330

关键词:

摘要:

参考文章(23)
JoDean Morrow, Cyclic Plastic Strain Energy and Fatigue of Metals Internal Friction, Damping, and Cyclic Plasticity. pp. 45- 45 ,(1965) , 10.1520/STP43764S
Christian Müller, Zur statistischen Auswertung experimenteller Wöhlerlinien Technische Universität Dortmund. ,(2015) , 10.21268/20150522-095904
W. A. Wong, R. J. Bucci, R. H. Stentz, J. B. Conway, Tensile and Strain-Controlled Fatigue Data for Certain Aluminum Alloys for Application in the Transportation Industry SAE Technical Paper Series. ,vol. 96, pp. 373- 383 ,(1987) , 10.4271/870094
C. C. Wigant, Low Cycle Fatigue of A356-T6 Cast Aluminum Alloy SAE Technical Paper Series. ,vol. 96, pp. 384- 392 ,(1987) , 10.4271/870096
Michael Vormwald, Timm Seeger, Nutzung der Anrißschwingspielzahl beim Incremental Step Test zur Abschätzung der Werkstoffwöhlerlinie Materials Testing-Materials and Components Technology and Application. ,vol. 30, pp. 368- 373 ,(1988) , 10.1515/MT-1988-3011-1220
Walter Ramberg, William R. Osgood, Description of Stress-Strain Curves by Three Parameters Technical Note. ,(1943)
X. Zhu, J.W. Jones, J.E. Allison, Effect of Frequency, Environment, and Temperature on Fatigue Behavior of E319 Cast-Aluminum Alloy: Small-Crack Propagation Metallurgical and Materials Transactions A-physical Metallurgy and Materials Science. ,vol. 39, pp. 2666- 2680 ,(2008) , 10.1007/S11661-008-9630-2