Incremental constitutive description of SAE 5120 steel deformed under hot-working conditions
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[1] H. Ji,et al. Study on the microstructure evolution during radial-axial ring rolling of IN718 using a unified internal state variable material model , 2017 .
[2] M. Storchak,et al. Modelling the material resistance to cutting , 2017 .
[3] S. A. Rodríguez,et al. Hot deformation of a Fe-Mn-Al-C steel susceptible of κ-carbide precipitation , 2017 .
[4] A. Svoboda,et al. A dislocation density based constitutive model for as-cast Al-Si alloys: Effect of temperature and microstructure , 2017 .
[5] Liwen Zhang,et al. The kinetics and cellular automaton modeling of dynamic recrystallization behavior of a medium carbon Cr-Ni-Mo alloyed steel in hot working process , 2016 .
[6] M. Nouari,et al. Combined microstructure-based flow stress and grain size evolution models for multi-physics modelling of metal machining , 2016 .
[7] Yongcheng Lin,et al. An improved kinetics model to describe dynamic recrystallization behavior under inconstant deformation conditions , 2016 .
[8] E. S. Puchi-Cabrera,et al. A novel approach for modeling the flow stress curves of austenite under transient deformation conditions , 2016 .
[9] P. Hodgson,et al. Physically-based constitutive modelling of hot deformation behavior in a LDX 2101 duplex stainless steel☆ , 2016 .
[10] Wei Sun,et al. Determination of material parameters for a unified viscoplasticity-damage model for a P91 power plant steel , 2016 .
[11] Sumantra Mandal,et al. Characterization of hot deformation behavior of alloy 617 through kinetic analysis, dynamic material modeling and microstructural studies , 2016 .
[12] M. Fu,et al. Experimental investigation and modeling of ductile fracture behavior of TRIP780 steel in hot working conditions , 2016 .
[13] Vincent Velay,et al. Behavior modeling and microstructural evolutions of Ti–6Al–4V alloy under hot forming conditions , 2016 .
[14] J. Zheng,et al. Effect of manganese content on hot deformation behaviour of Fe–(20/27)Mn–4Al–0.3C non-magnetic steels , 2016 .
[15] Han Feng,et al. Constitutive Modeling for Flow Behaviors of Superaustenitic Stainless Steel S32654 during Hot Deformation , 2016 .
[16] S. Spigarelli,et al. Constitutive analysis of high-temperature workability of a high-nitrogen bearing steel , 2016 .
[17] Liwen Zhang,et al. Study on constitutive modeling and processing maps for hot deformation of medium carbon Cr–Ni–Mo alloyed steel , 2016 .
[18] W. Bleck,et al. A constitutive model for the tensile behaviour of TWIP steels : Composition and temperature dependencies , 2016 .
[19] H. Palkowski,et al. A new unified approach for modeling recrystallization during hot rolling of steel , 2015 .
[20] J. Cabrera,et al. Modeling the hot flow behavior of a Fe–22Mn–0.41C–1.6Al–1.4Si TWIP steel microalloyed with Ti, V and Nb , 2015 .
[21] Hailong Zhang,et al. Modified arrhenius-type constitutive model and artificial neural network-based model for constitutive relationship of 316LN stainless steel during hot deformation , 2015 .
[22] E. S. Puchi-Cabrera,et al. Constitutive description of Fe–Mn23–C0.6 steel deformed under hot-working conditions , 2015 .
[23] J. Cabrera,et al. Hot deformation behavior, dynamic recrystallization, and physically-based constitutive modeling of plain carbon steels , 2015 .
[24] Z. Cui,et al. A physically-based constitutive model for SA508-III steel: Modeling and experimental verification , 2015 .
[25] Xitao Wang,et al. A physically-based constitutive model for a nitrogen alloyed ultralow carbon stainless steel , 2015 .
[26] Xianghua Liu,et al. Calculation of rolling pressure distribution and force based on improved Karman equation for hot strip mill , 2014 .
[27] Y. Estrin,et al. A constitutive model of the deformation behaviour of twinning induced plasticity (TWIP) steel at different temperatures , 2014 .
[28] D. Banabic,et al. Simulation of hot forming processes: Using cost effective micro-structural constitutive models , 2014 .
[29] Q. Lu,et al. The kinetics of dynamic recrystallization of a low carbon vanadium-nitride microalloyed steel , 2014 .
[30] Wei Yan,et al. Analysis of deformation behavior and workability of advanced 9Cr-Nb-V ferritic heat resistant steels , 2014 .
[31] Guo-Quan Liu,et al. Physically based constitutive analysis to predict flow stress of medium carbon and vanadium microalloyed steels , 2014 .
[32] Xunzhong Guo,et al. The flow behaviors of CLAM steel at high temperature , 2014 .
[33] Guo-Quan Liu,et al. Effect of carbon content on hot deformation behaviors of vanadium microalloyed steels , 2014 .
[34] Shreyes N. Melkote,et al. A unified internal state variable material model for inelastic deformation and microstructure evolution in SS304 , 2014 .
[35] R. Misra,et al. On the hot deformation behavior of AISI 420 stainless steel based on constitutive analysis and CSL model , 2014 .
[36] G. Balachandran,et al. Simulation of hot rolling deformation at intermediate passes and its industrial validity , 2013 .
[37] Franck Morel,et al. An experimental investigation of the behaviour of steels over large temperature and strain rate ranges , 2013 .
[38] Y. Im,et al. Numerical modeling of dynamic recrystallization during nonisothermal hot compression by cellular automata and finite element analysis , 2010 .
[39] J. Jonas,et al. The Avrami kinetics of dynamic recrystallization , 2009 .
[40] Yong-Taek Im,et al. A microstructure evolution model for numerical prediction of austenite grain size distribution , 2008 .
[41] C. M. Sellars,et al. Effect of changing strain rate on flow stress during hot deformation of type 316L stainless steel , 2008 .
[42] Yuri Estrin,et al. 2 – Dislocation-Density–Related Constitutive Modeling , 1996 .
[43] U. F. Kocks. Constitutive Behavior Based on Crystal Plasticity , 1987 .
[44] Yuri Estrin,et al. A unified phenomenological description of work hardening and creep based on one-parameter models , 1984 .