Issue 38

J. Papuga et al., Frattura ed Integrità Strutturale, 38 (2016) 106-113; DOI: 10.3221/IGF-ESIS.38.14 113 [32] Bhongbhibhat, T., Festigkeitsverhalten von Stählen unter mehrachsiger phasenverschobener Schwingbeanspruchung mit unterschiedlichen Schwingungsformen und Frequenzen, [PhD thesis], Universität Stuttgart, Stuttgart, (1986). [33] Issler, L., Festigkeitsverhalten metallischer Werkstoffe bei mehrachsiger phasenverschobener Schwingbeanspruchung, [PhD thesis], Universität Stuttgart, Stuttgart, (1973). [34] Baier, F., Zeit- und Dauerfestigkeit bei überlagerter statischer und schwingender Zug-Druck- und Torsionbeanspruchung, PhD thesis, Universität Stuttgart, Stuttgart, (1970). [35] El Magd, E., Mielke, S., Dauerfestigkeit bei überlagerter zweiachsiger statischer Beanspruchung, Konstruktion, 29 (1977) 253-257. [36] Roš, M., Eichinger, M., Die Bruchgefahr fester Körper bei wiederholter Beanspruchung – Ermüdung, [Technical report Bericht Nr. 173 ]. Eidgenössische Materialprüfungs- und Versuchsanstalt für Industrie, Bauwesen und Gewerbe, Zürich, (1950). [37] McDiarmid, D.L., Mean Stress Effects in Biaxial Fatigue where the Stresses are Out-of-Phase and at Different Frequencies, in: K.F. Kussmaul, D.L. McDiarmid, D.F. Socie (Eds.), Fatigue Under Biaxial and Multiaxial Loading, Mechanical Engineering Publication, London, (1991) 321-335. [38] Susmel, L. Petrone, N., in: A. Carpinteri, M. De Freitas, A. Spagnoli (Eds.), Proc. of 6th International Conference on Biaxial/Multiaxial Fatigue and Fracture, ESIS Publication, London, (2001) 83-104. [39] Simbürger, A., Festigkeitsverhalten zäher Werkstoffe bei einer mehrachsigen phaseverschobenen Schwingbeanspruchung mit körperfesten und veränderlichen Hauptspannungsrichtungen, [PhD thesis], TH Darmstadt, Darmstadt, (1975). [40] Carpinteri, A., Spagnoli, A., Multiaxial high-cycle fatigue criterion for hard metals, Int. Jnl. of Fatigue, 23 (2001) 135- 145. [41] Mamiya, E.N., Araújo, J.A., Fatigue limit under multiaxial loadings: on the definition of the equivalent shear stress, Mechanics Research Communications, 29 (2002) 141-151. [42] Banvillet, A., Palin-Luc, T., Lasserre, S., A volumetric energy based high cycle multiaxial fatigue criterion, Int. Jnl. of Fatigue, 25 (2003) 755-769. [43] Cruz, I., Zouain, N., A shakedown model for high-cycle fatigue, Fatigue Fract. Engng. Mater. Struct., 26 (2003) 123- 135. [44] Gonçalves, C.A., Araújo, J.A., Mamiya, E.N., A simple multiaxial fatigue criterion for metals, Comptes Rendus Mécanique, 332 (2004) 963-968. [45] Gonçalves, C.A., Araújo, J.A., Mamiya, E.N., Multiaxial fatigue: a stress based criterion for hard metals, Int. Jnl. of Fatigue, 27(2005) 177-187. [46] Liu, Y., Mahadevan, S., Multiaxial high-cycle fatigue criterion and life prediction for metals, Int. Jnl. of Fatigue, 27 (2005) 790-800. [47] Ninic, D., A stress-based multiaxial high-cycle fatigue damage criterion, Int. Jnl. of Fatigue, 28 (2006) 103-113. [48] Ninic, D., Stark, H.L., A multiaxial fatigue damage function, Int. Jnl. of Fatigue, 29 (2007) 533-548. [49] Braccesi, C., Cianetti, F., Lori, G., Pioli, D. (2008). Int. Jnl. of Fatigue 30, 1479-1497. [50] Papuga, J., Růžička, M., Two new multiaxial criteria for high cycle fatigue computation, Int. Jnl. of Fatigue, 30 (2008) 58-66. [51] Shariyat, M., Three energy-based multiaxial HCF criteria for fatigue life determination in components under random non-proportional stress fields, Fatigue Fract. Engng. Mater. Struct., 32 (2009) 785-808. [52] Li, B., Reis, L., de Freitas, M., Comparative study of multiaxial fatigue damage models for ductile structural steels and brittle materials, Int. Jnl. of Fatigue, 31 (2009) 1895-1906. [53] Zhang, C.-C., Yao, W.-X., An improved multiaxial high-cycle fatigue criterion based on critical plane approach, Fatigue Fract. Engng. Mater. Struct., 34 (2011) 337-344. [54] Carpinteri, A., Spagnoli, A., Vantadori, S., Multiaxial fatigue assessment using a simplified critical plane-based criterion, Int. Jnl. of Fatigue, 33 (2011) 969-976. [55] Kenmeugne, B., Soh Fotsing, B.D., Anago, G.F., Fogue, M., Robert, J.-L., Kenne, J.-P., On the evolution and comparison of multiaxial fatigue criteria, International Journal of Engineering and Technology, 4 (2012) 37-46. [56] Augustins, L., An empirical multiaxial high cycle fatigue criterion for automotive cylinder head design, Engineering Failure Analysis, 28 (2013) 264-274. [57] Matsubara, G., Nishio, K., Multiaxial high-cycle fatigue criterion considering crack initiation and non-propagation, Int. Jnl. of Fatigue, 47 (2013) 222-231. [58] Golos, K.M., Debski, D.K., Debski, M.A., A stress-based fatigue criterion to assess high-cycle fatigue under in-phase multiaxial loading conditions, Theoretical and Applied Fracture Mechanics, 73 (2014) 3-8.

RkJQdWJsaXNoZXIy MjM0NDE=