Ratcheting and stress relaxation of SA333 Gr. 6 carbon steel samples under uniaxial multistep strain-controlled condition
Tóm tắt
Từ khóa
Tài liệu tham khảo
Facheris G, Janssens KGF (2013) Cyclic mechanical behavior of 316L : uniaxial LCF and strain-controlled ratcheting tests. Nucl Eng Des 257:100–108. https://doi.org/10.1016/j.nucengdes.2013.01.010
Facheris G, Janssens KGF, Foletti S (2014) Multiaxial fatigue behavior of AISI 316L subjected to strain-controlled and ratcheting paths. Int J Fatigue 68:195–208. https://doi.org/10.1016/j.ijfatigue.2014.05.003
Paul SK (2019) A critical review of experimental aspects in ratcheting fatigue : microstructure to specimen to component. Integr Med Res 8:4894–4914. https://doi.org/10.1016/j.jmrt.2019.06.014
Bakkar MA, Saha R, Das D (2020) Low cycle fatigue performance and failure analysis of reinforcing bar. Met Mater Int. https://doi.org/10.1007/s12540-020-00839-x
Xu L, Nie X, Fan J et al (2016) Cyclic hardening and softening behavior of the low yield point steel BLY160: experimental response and constitutive modeling. Int J Plast 78:44–63. https://doi.org/10.1016/j.ijplas.2015.10.009
Khutia N, Dey PP, Paul S, Tarafder S (2013) Development of non masing characteristic model for LCF and ratcheting fatigue simulation of SA333 C-Mn steel. Mech Mater 65:88–102. https://doi.org/10.1016/j.mechmat.2013.05.016
Khutia N, Dey PP, Hassan T (2015) An improved nonproportional cyclic plasticity model for multiaxial low-cycle fatigue and ratcheting responses of 304 stainless steel. Mech Mater 91:12–25. https://doi.org/10.1016/j.mechmat.2015.05.011
Zhang B, Wang R, Hu D (2020) Constitutive modelling of ratcheting behaviour for nickel-based single crystal superalloy under thermomechanical fatigue loading considering microstructure evolution. Int J Fatigue 139:105786. https://doi.org/10.1016/j.ijfatigue.2020.105786
Mishra P, Rajpurohit RS, Srinivas NCS (2020) Ratcheting fatigue behavior of modified 9Cr–1Mo steel at room temperature. Met Mater Int. https://doi.org/10.1007/s12540-020-00811-9
Rajpurohit RS, Mishra P, Srinivas NCS (2020) Ratcheting fatigue behaviour of zircaloy-2 at 300 °C. Met Mater Int. https://doi.org/10.1007/s12540-020-00686-w
Paul SK, Stanford N, Taylor A, Hilditch T (2015) The effect of low cycle fatigue, ratcheting and mean stress relaxation on stress—strain response and microstructural development in a dual phase steel. Int J Fatigue 80:341–348
Wang Q, Liu X (2017) Non-saturated cyclic softening and uniaxial ratcheting of a high-strength steel: experiments and viscoplastic constitutive modeling. Mech Mater 113:112–125
Li C, Chen G, Chen X, Zhang W (2012) Ratcheting strain and simulation of 16MnR steel under uniaxial cyclic loading. Com Mater Sci 57:43–47. https://doi.org/10.1016/j.commatsci.2011.09.003
Sreenivasan S, Mishra SK, Dutta K (2017) A ratcheting strain and its effect on low cycle fatigue behavior of Al 7075–T6 alloy. Mater Sci Eng 698:46–53
Zakavi SJ, Aghaei Y (2020) The ratcheting behavior of carbon steel piping elbows under cyclic bending moment and temperature. J Brazilian Soc Mech Sci Eng 42:1–9. https://doi.org/10.1007/s40430-020-02521-0
Zhang Q, Jin M, Li Q, Guo B (2019) The hysteretic curve characteristics on Q235 steel under asymmetrical cyclic loading. J Braz Soc Mech Sci Eng. https://doi.org/10.1007/s40430-019-1856-y
Kumar S, Sivaprasad S, Dhar S, Tarafder S (2010) Ratcheting and low cycle fatigue behavior of SA333 steel and their life prediction. J Nucl Mat 401:17–24. https://doi.org/10.1016/j.jnucmat.2010.03.014
Yuan X, Yu W, Fu S (2016) A Effect of mean stress and ratcheting strain on the low cycle fatigue behavior of a wrought 316LN stainless steel. Mater Sci Eng 677:193–202
Ohno N, Abdel-Karim M, Kobayashi M, Igari T (1998) Ratchetting characteristics of 316FR steel at high temperature, part I: strain-controlled ratchetting experiments and simulations. Int J Plast 14:355–372. https://doi.org/10.1016/S0749-6419(98)00009-6
Han F, Tang B, Kou H (2016) Cyclic softening behavior of Ti—6Al—4V alloy at macro and micro-scale. Mater Lett 185:115–118. https://doi.org/10.1016/j.matlet.2016.08.119
Ma L, Xiao S, Deng H, Hu W (2014) Atomic simulation of fatigue crack propagation in Ni3Al. Appl Phys A Mater Sci Process 118:1399–1406. https://doi.org/10.1007/s00339-014-8895-0
Yaguchi M, Yamamoto M, Ogata T (2002) A viscoplastic constitutive model for nickel-base superalloy, part 1: kinematic hardening rule of anisotropic dynamic recovery. Int J Plast 18:1083–1109. https://doi.org/10.1016/S0749-6419(01)00029-8
Ohno N, Wang JD (1993) Kinematic hardening rules with critical state of dynamic recovery, part II: application to experiments of ratchetting behavior. Int J Plast 9:391–403
Ahmed R, Barrett PR, Hassan T (2016) Unified viscoplasticity modeling for isothermal low-cycle fatigue and fatigue-creep stress–strain responses of Haynes 230. Int J Solids Struct 88–89:131–145. https://doi.org/10.1016/j.ijsolstr.2016.03.012
Janssens KGF, Niffenegger M, Reichlin K (2009) A computational fatigue analysis of cyclic thermal shock in notched specimens. Nucl Eng Des 239:36–44
Janssens KGF (2011) Case study of the applicability of cyclic hardening material descriptions in finite element simulation of cyclic thermal shocks. Fatigue Fract Eng Mater Struct 34:562–572
Kobayashi M, Ohno N, Igari T (1998) Ratchetting characteristics of 316FR steel at high temperature: part II. Analysis of thermal ratchetting induced by spatial variation of temperature. Int J Plast 14:373–390
Kang G, Li Y, Gao Q (2005) Non-proportionally multiaxial ratcheting of cyclic hardening materials at elevated temperatures: experiments and simulations. Mech Mater 37:1101–1118
Zhang SL, Xuan FZ (2017) Interaction of cyclic softening and stress relaxation of 9–12% Cr steel under strain-controlled fatigue-creep condition: experimental and modeling. Int J Plasticity. https://doi.org/10.1016/j.ijplas.2017.06.007
Bari S, Hassan T (2000) Anatomy of coupled constitutive models for ratcheting simulations. Int J Plast 16:381–409
Hartmann S, Haupt P (1993) Stress computation and consistent tangent operator using non-linear kinematic hardening models. Int J Numer Method Eng 36:3801–3804
Ohno N, Wang JD (1993) Kinematic hardening rules with critical state of dynamic recovery. Part I: formulations and basic features for ratcheting behaviour. Part II: application to experiments of ratcheting behaviour. Int J Plast 9:375–403
Abdel Karim M, Ohno N (2000) Kinematic hardening model suitable for ratcheting with steady state. Int J Plast 16:225–240
Kobayashi M, Ohno N (2002) Implementation of cyclic plasticity models based on a general form of kinematic hardening. Int J Numer Methods Eng 53:2217–2238
Khutia N, Dey PP, Sivaprasad S, Tarafder S (2014) Development of new cyclic plasticity model for 304LN stainless steel through simulation and experimental investigation. Mech Mater 78:85–101
Sivaprasad S, Paul SK, Gupta SK, Bhasin V, Narasaiah N, Tarafder S (2010) Influence of uniaxial ratchetting on low cycle fatigue behviour of SA 333 Gr. 6 CeMn steel. Int J Pressure Vessels and Piping 87:464–469
Cornet C, Zhao LG, Tong J (2009) Ratchetting strain as a damage parameter in controlling crack growth at elevated temperature. Eng Fract Mech 76:2538–2553