Grain size dependent mechanical behavior and TRIP effect in a metastable austenitic stainless steel
暂无分享,去创建一个
[1] R. Lebensohn,et al. Crystal plasticity modeling of strain-induced martensitic transformations to predict strain rate and temperature sensitive behavior of 304L steels: Applications to tension, compression, torsion, and impact , 2022, International Journal of Plasticity.
[2] H. Mirzadeh,et al. Cold unidirectional/cross-rolling of austenitic stainless steels: a review , 2022, Archives of Civil and Mechanical Engineering.
[3] M. Ganjiani,et al. A large deformation constitutive model for plastic strain-induced phase transformation of stainless steels at cryogenic temperatures , 2022, International Journal of Plasticity.
[4] Changyou Li,et al. Effect of annealing treatment on microstructure evolution and deformation behavior of 304L stainless steel made by laser powder bed fusion , 2022, International Journal of Plasticity.
[5] Z.B. Wang,et al. Superior mechanical properties and deformation mechanisms of a 304 stainless steel plate with gradient nanostructure , 2022, International Journal of Plasticity.
[6] R. Misra,et al. Phase reversion-induced nanostructured austenitic alloys: an overview , 2022, Materials Technology.
[7] F. Barbe,et al. Experimental and numerical investigations of plastic strain mechanisms of AISI 316L alloys with bimodal grain size distribution , 2022, International Journal of Plasticity.
[8] N. Tsuji,et al. Effective grain size refinement of an Fe-24Ni-0.3C metastable austenitic steel by a modified two-step cold rolling and annealing process utilizing the deformation-induced martensitic transformation and its reverse transformation , 2022, Journal of Materials Research and Technology.
[9] K. Wu,et al. Grain refinement strengthening mechanism of an austenitic stainless steel: critically analyze the impacts of grain interior and grain boundary , 2022, Journal of Materials Research and Technology.
[10] David A. Knowles,et al. A crystal plasticity model that accounts for grain size effects and slip system interactions on the deformation of austenitic stainless steels , 2022, International Journal of Plasticity.
[11] Hongyan Wu,et al. Significant effects of grain size on mechanical response characteristics and deformation mechanisms of metastable austenitic stainless steel , 2022, Materials Characterization.
[12] Z. Cui,et al. A multiscale investigation on the preferential deformation mechanism of coarse grains in the mixed-grain structure of 316LN steel , 2022, International Journal of Plasticity.
[13] Chenchong Wang,et al. Characterization of deformation-induced martensite with various AGSs upon Charpy impact loading and correlation with transformation mechanisms , 2021, Materials Characterization.
[14] T. Pardoen,et al. Transformation plasticity in high strength, ductile ultrafine-grained FeMn alloy processed by heavy ausforming , 2021, International Journal of Plasticity.
[15] Truong Duc Trinh,et al. A Crystal Plasticity Simulation on Strain-Induced Martensitic Transformation in Crystalline TRIP Steel by Coupling with Cellular Automata , 2021, Metals.
[16] J. Rodríguez-Martínez,et al. Flow and fracture of austenitic stainless steels at cryogenic temperatures , 2021, Engineering Fracture Mechanics.
[17] T. Tsuchiyama,et al. Effect of Carbon and Nitrogen on Md30 in Metastable Austenitic Stainless Steel , 2021, ISIJ International.
[18] V. Levitas. Phase transformations, fracture, and other structural changes in inelastic materials , 2020 .
[19] Guodong Wang,et al. Grain size dependence of twinning behaviors and resultant cryogenic impact toughness in high manganese austenitic steel , 2020 .
[20] H. Mirzadeh,et al. Deformation-induced martensite in austenitic stainless steels: A review , 2020, Archives of Civil and Mechanical Engineering.
[21] M. Soleimani,et al. Transformation-induced plasticity (TRIP) in advanced steels: A review , 2020, Materials Science and Engineering: A.
[22] V. Kain,et al. Kinetics parameters for deformation-induced martensitic transformation in austenitic stainless steels , 2020 .
[23] L. P. Karjalainen,et al. Improving the yield strength of an antibacterial 304Cu austenitic stainless steel by the reversion treatment , 2020 .
[24] H. Biermann,et al. Modeling of the cyclic deformation behavior of austenitic TRIP-steels , 2020 .
[25] L. Hua,et al. Strain rate sensitivity of the ultrastrong gradient nanocrystalline 316L stainless steel and its rate-dependent modeling at nanoscale , 2020 .
[26] H. Abreu,et al. Influence of carbon content on the martensitic transformation of titanium stabilized austenitic stainless steels , 2020 .
[27] A. Järvenpää,et al. Processing and Properties of Reversion-Treated Austenitic Stainless Steels , 2020, Metals.
[28] J. P. Li,et al. Mechanical properties and deformation mechanisms of a novel austenite-martensite dual phase steel , 2020 .
[29] S. Walley,et al. The Hall–Petch and inverse Hall–Petch relations and the hardness of nanocrystalline metals , 2019, Journal of Materials Science.
[30] Ding-shun She,et al. Effects of grain size on tensile property and fracture morphology of 316L stainless steel , 2019, Materials Letters.
[31] H. Mirzadeh,et al. Effects of Grain Size on Mechanical Properties and Work‐Hardening Behavior of AISI 304 Austenitic Stainless Steel , 2019, steel research international.
[32] A. Odeshi,et al. Thermal and Mechanical Stability of Austenite in Metastable Austenitic Stainless Steel , 2019, Metallurgical and Materials Transactions A.
[33] G. Gray,et al. Structural representation of additively manufactured 316L austenitic stainless steel , 2019, International Journal of Plasticity.
[34] X. An,et al. Significance of stacking fault energy in bulk nanostructured materials: Insights from Cu and its binary alloys as model systems , 2019, Progress in Materials Science.
[35] N. Tsuji,et al. Mechanism of huge Lüders-type deformation in ultrafine grained austenitic stainless steel , 2019, Scripta Materialia.
[36] Jee-Hyun Kang,et al. Different Effects of Ni and Mn on Thermodynamic and Mechanical Stabilities in Cr-Ni-Mn Austenitic Steels , 2018, Metallurgical and Materials Transactions A.
[37] H. Mirzadeh,et al. Modeling the kinetics of deformation-induced martensitic transformation in AISI 316 metastable austenitic stainless steel , 2018, Vacuum.
[38] A. K. Khan,et al. Effects of grain refinement on the quasi-static compressive behavior of AISI 321 austenitic stainless steel: EBSD, TEM, and XRD studies , 2018, International Journal of Plasticity.
[39] A. Kimura,et al. Tensile properties of mechanically alloyed Zr added austenitic stainless steel , 2018 .
[40] F. Ren,et al. Cryorolling impacts on microstructure and mechanical properties of AISI 316 LN austenitic stainless steel , 2018 .
[41] L. P. Karjalainen,et al. Stability of grain-refined reversed structures in a 301LN austenitic stainless steel under cyclic loading , 2017 .
[42] A. Żywczak,et al. The Investigation of Strain-Induced Martensite Reverse Transformation in AISI 304 Austenitic Stainless Steel , 2017, Metallurgical and Materials Transactions A.
[43] O. A. Zambrano. Stacking Fault Energy Maps of Fe–Mn–Al–C–Si Steels: Effect of Temperature, Grain Size, and Variations in Compositions , 2016 .
[44] E. Holmström,et al. Stacking Fault Energies in austenitic stainless steels , 2016 .
[45] Arpan Das. Revisiting Stacking Fault Energy of Steels , 2016, Metallurgical and Materials Transactions A.
[46] Xin Sun,et al. Suppression of Twinning and Phase Transformation in an Ultrafine Grained 2 GPa Strong Metastable Austenitic Steel: Experiment and Simulation , 2015 .
[47] P. Munroe,et al. Through Thickness Microstructural and Texture Inhomogeneity Within Al Layers in ARB-Produced Al-Al(Sc) Layered Composite Sheets , 2015, Metallurgical and Materials Transactions A.
[48] P. P. Bhattacharjee,et al. Electron backscatter diffraction study of deformation and recrystallization textures of individual phases in a cross-rolled duplex steel , 2014 .
[49] A. Kermanpur,et al. Investigation of the effect of grain size on the strain-induced martensitic transformation in a high-Mn stainless steel using nanoindentation , 2014 .
[50] Young‐kook Lee,et al. The effects of multi-cyclic thermo-mechanical treatment on the grain refinement and tensile properties of a metastable austenitic steel , 2014 .
[51] L. P. Karjalainen,et al. Phase reversion induced nanograined austenitic stainless steels: microstructure, reversion and deformation mechanisms , 2013 .
[52] T. Tsuchiyama,et al. Effect of Grain Size on Thermal and Mechanical Stability of Austenite in Metastable Austenitic Stainless Steel , 2013 .
[53] L. P. Karjalainen,et al. The influence of grain size on the strain-induced martensite formation in tensile straining of an austenitic 15Cr–9Mn–Ni–Cu stainless steel , 2013 .
[54] A. Weidner,et al. Ultrafine grained high-alloyed austenitic TRIP steel , 2013 .
[55] A. Zarei‐Hanzaki,et al. An investigation into the room temperature mechanical properties of nanocrystalline austenitic stainless steels , 2013 .
[56] Alireza Saeed-Akbari,et al. Nitrogen in chromium–manganese stainless steels: a review on the evaluation of stacking fault energy by computational thermodynamics , 2013, Science and technology of advanced materials.
[57] Ramón Zaera,et al. Experimental and numerical analysis of the martensitic transformation in AISI 304 steel sheets subjected to perforation by conical and hemispherical projectiles , 2013 .
[58] Xin Sun,et al. Twinning and martensite in a 304 austenitic stainless steel , 2012 .
[59] Xin Sun,et al. Quasi-static and dynamic responses of advanced high strength steels: Experiments and modeling , 2012 .
[60] J. Fernández-Sáez,et al. A constitutive model for analyzing martensite formation in austenitic steels deforming at high strain rates , 2012 .
[61] A. Weidner,et al. Microstructure of austenitic stainless steels of various phase stabilities after cyclic and tensile deformation , 2011 .
[62] D. Ponge,et al. Design of a novel Mn-based 1 GPa duplex stainless TRIP steel with 60% ductility by a reduction of austenite stability , 2011 .
[63] M. A. Belouchrani,et al. Experimental analysis of the correlation between martensitic transformation plasticity and the austenitic grain size in steels , 2011 .
[64] M. Berveiller,et al. Semi phenomenological modelling of the behavior of TRIP steels , 2011 .
[65] M. A. Belouchrani,et al. Effects of the austenite grain size on transformation plasticity in a 35 NCD 16 steel , 2010 .
[66] F. Forouzan,et al. Production of nano/submicron grained AISI 304L stainless steel through the martensite reversion process , 2010 .
[67] Dirk Mohr,et al. Evaluation of associated and non-associated quadratic plasticity models for advanced high strength steel sheets under multi-axial loading , 2010 .
[68] Heung Nam Han,et al. Crystal plasticity finite element modeling of mechanically induced martensitic transformation (MIMT) in metastable austenite , 2010 .
[69] T. Antretter,et al. Macro modelling and homogenization for transformation induced plasticity of a low-alloy steel , 2009 .
[70] Mgd Marc Geers,et al. A multi-scale model of martensitic transformation plasticity , 2008 .
[71] Young‐kook Lee,et al. Effect of grain size on transformation-induced plasticity in an ultrafine-grained metastable austenitic steel , 2008 .
[72] Matti Ristinmaa,et al. A constitutive model for the formation of martensite in austenitic steels under large strain plasticity , 2007 .
[73] B. Skoczeń,et al. Constitutive modelling and identification of parameters of the plastic strain-induced martensitic transformation in 316L stainless steel at cryogenic temperatures , 2006 .
[74] D. Matlock,et al. Deformation-induced phase transformation and strain hardening in type 304 austenitic stainless steel , 2006 .
[75] Jian Lu,et al. Tensile properties of a nanocrystalline 316L austenitic stainless steel , 2005 .
[76] Hannu Hänninen,et al. Effect of strain rate on the strain-induced γ → α′-martensite transformation and mechanical properties of austenitic stainless steels , 2005 .
[77] T. Byun,et al. Temperature dependence of strain hardening and plastic instability behaviors in austenitic stainless steels , 2004 .
[78] D. Matlock,et al. Quantitative measurement of deformation-induced martensite in 304 stainless steel by X-ray diffraction , 2004 .
[79] A. Schino,et al. Effects of martensite formation and austenite reversion on grain refining of AISI 304 stainless steel , 2002 .
[80] M. Hadji,et al. Microstructure and mechanical properties of austenitic stainless steels after cold rolling , 2002 .
[81] Takeshi Iwamoto,et al. Computational simulation of the dependence of the austenitic grain size on the deformation behavior of TRIP steels , 2000 .
[82] J. Jun,et al. Variation of stacking fault energy with austenite grain size and its effect on the MS temperature of γ→ε martensitic transformation in Fe–Mn alloy , 1998 .
[83] Yoshihiro Tomita,et al. Investigation on deformation mode dependence of strain-induced martensitic transformation in trip steels and modelling of transformation kinetics , 1998 .
[84] Yoshihiro Tomita,et al. Constitutive modeling of TRIP steel and its application to the improvement of mechanical properties , 1995 .
[85] L. Murr,et al. Deformation-induced martensitic characteristics in 304 and 316 stainless steels during room-temperature rolling , 1995 .
[86] S. Takaki,et al. Optimal Chemical Composition in Fe-Cr-Ni Alloys for Ultra Grain Refining by Reversion from Deformation Induced Martensite. , 1991 .
[87] Yutaka Ono,et al. Composition and Grain Size Dependencies of Strain-induced Martensitic Transformation in Metastable Austenitic Stainless Steels , 1977 .
[88] Gregory B Olson,et al. Kinetics of strain-induced martensitic nucleation , 1975 .
[89] M. Knezevic,et al. Stress-assisted (γ→α′) and strain-induced (γ→ε→α′) phase transformation kinetics laws implemented in a crystal plasticity model for predicting strain path sensitive deformation of austenitic steels , 2021 .
[90] L. Du,et al. Significant influence of rolling modes on martensitic transformation, microstructural evolution and texture development in a 304 stainless steel , 2020 .
[91] G. Maier,et al. Effect of stacking fault energy on Hall–Petch relationship parameters of austenitic stainless steels , 2019, PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON ADVANCED MATERIALS WITH HIERARCHICAL STRUCTURE FOR NEW TECHNOLOGIES AND RELIABLE STRUCTURES 2019.
[92] D. Daisenberger,et al. Metastable austenite driven work-hardening behaviour in a TRIP-assisted dual phase steel , 2017 .
[93] D. Suh,et al. Medium Mn transformation-induced plasticity steels: Recent progress and challenges , 2017 .
[94] Wei Li,et al. Compatible strain evolution in two phases due to epsilon martensite transformation in duplex TRIP-assisted stainless steels with high hydrogen embrittlement resistance , 2017 .
[95] Young‐kook Lee,et al. Driving force for γ→ε martensitic transformation and stacking fault energy of γ in Fe-Mn binary system , 2000 .
[96] K. G. Samuel,et al. Influence of temperature and grain size on the tensile ductility of AISI 316 stainless steel , 1985 .
[97] Koji Okuno,et al. Dynamic Recrystallization of Austenite in 18-8 Stainless Steel and 18 Ni Maraging Steel , 1982 .