Profile
International Journal of Metallurgical & Materials Engineering Volume 1 (2015), Article ID 1:IJMME-104, 5 pages
http://dx.doi.org/10.15344/2455-2372/2015/104
Research Article
Simulation of Cyclic Transformations in the Intercritical Range of a 5Mn Steel

P.I. Sarafoglou, M.I.T. Tzini and G.N. Haidemenopoulos*

Department of Mechanical Engineering, University of Thessaly, Pedion Areos, 38500 Volos, Greece
Prof. Gregory Haidemenopoulos, University of Thessaly, Pedion Areos, 38500 Volos, Greece; E-mail: hgreg@mie.uth.gr
23 March 2015; 05 May 2015; 07 May 2015
Sarafoglou PI, Tzini MIT, Haidemenopoulos GN (2015) Simulation of Cyclic Transformations in the Intercritical Range of a 5Mn Steel. Int J Metall Mater Eng 1: 104. doi: http://dx.doi.org/10.15344/2455-2372/2015/104

References

  1. Matlock DK and Speer JG (2009) Third Generation of AHSS: Microstructure Design Concepts, in Microstructure and Texture in Steels, A Haldar, S Suwas, and D Bhattacharjee, Editors, Springer London.
  2. Matlock DK, Speer J, De Moor E, Gibbs PJ (2012) JESTECH 15: 1-12.
  3. Suh DW, Ryu JH, Joo MS, Yang HS, Lee K, Bhadeshia HKDH (2012) Medium-Alloy Manganese-Rich Transformation-Induced Plasticity Steels. Metall Mater Trans (A) 44: 286-293. View
  4. Lee S-J, Lee S and De Cooman BC (2011) Austenite stability of ultrafinegrained transformation-induced plasticity steel with Mn partitioning. Scr Mater 65: 225–228. View
  5. Speer JG, Assunção FCR, Matlock DK, and Edmonds DV (2005) The “quenching and partitioning” process: background and recent progress. Materials Research 8: 417-423. View
  6. Edmonds DV, He K, Rizzo FC, De Cooman BC, Matlock DK, et al. (2006) Quenching and partitioning martensite-A novel steel heat treatment. Mater Sci Eng (A) 438-440, 25-34. View
  7. Miller RL (1973) Metall Trans 3: 905-912.
  8. Suh D-W, Park S-J, Lee T-H, Oh C-S, Kim S-J (2010) Influence of Al on microstructure and mechanical behavior of low carbon manganese transformation-induced plasticity steels. Metall Mater Trans (A) 41: 397- 408. View
  9. Merwin MJ (2007) SAE Technical Paper, SAE, Warrendale, PA.
  10. Huang H, Matsumura O, Furukawa T (1994) Retained austenite in low carbon, manganese steel after intercritical heat treatment. Mater Sci Technol 10: 621-626. View
  11. Cai ZH, Ding H, Xue X and Xin QB (2013) Microstructural evolution and mechanical properties of hot-rolled 11% manganese TRIP steel. Mater Sci Eng (A) 560: 388-395. View
  12. Cai ZH, Ding H, Misra RDK, Kong H, Wu HY (2014) Unique impact of ferrite in influencing austenite stability and deformation behavior in a hot-rolled Fe-Mn-Al-C steel. Mater Sci Eng (A) 595: 86-91. View
  13. Chen H, Van der Zwaag S (2010) Application of the cyclic phase transformation concept for investigating growth kinetics of solid-state partitioning phase transformations. Comp Mater Sci 49: 801-813. View
  14. Chen H, Appolaire B, Van der Zwaag S (2011) Application of cyclic partial phase transformations for identifying kinetic transitions during solid-state phase transformations: Experiments and modeling. Acta Mater. 59: 6751- 6760. View
  15. Anderson JO, Helander T, Höglund L, Shi P, Sundman B (2002) Thermo- Calc & DICTRA, computational tools for materials science. Calphad 26: 273-312. View
  16. Borgenstam A, Hoglund L, Agren J, Engstrom A (2000) Dictra a tool for simulation of Diffusional Transformations in Alloys. J Phase Equil 21: 269- 280. View
  17. Cai Z, Ding H, Misra RDK, Ying ZY (2015) Austenite stability and deformation behavior in a cold rolled transformation-induced plasticity steel with medium manganese content. Acta Mater 84: 229-236. View
  18. Wei R, Enomoto M, Hadian R, Zurob HS and Purdy GR (2013) Growth of austenite fromas-quenched martensite during intercritical annealing in an Fe-0.1C-3Mn-1.5Si alloy. Acta Mater 61: 697-707. View
  19. Nakada N, Mizutani K, Tsuchiyama T, Takaki S (2014) Difference in transformation behavior between ferrite and austenite formations in medium manganese steel. Acta Mater 65: 251-258. View