231
Views
8
CrossRef citations to date
0
Altmetric
Original Articles

Controlled Phase Transformation Simulations to Design Microstructure for Tailored Mechanical Properties in Steel

, , &
Pages 2064-2075 | Received 06 Feb 2016, Accepted 24 May 2016, Published online: 10 Sep 2016

REFERENCES

  • Evin, E.; Tomas, M.; Kmec, J.; Nemeth, S.; Katalinic, B.; Wessely, E. The deformation properties of high strength steel sheets for auto-body components. Procedia Engineering 2014, 69, 758–767.
  • Calcagnotto, M.; Ponge, D.; Raabe, D. On the effect of manganese on grain size stability and hardenability in ultrafine-grained ferrite/martensite dual-phase steels. Metallurgical and Materials Transactions A 2012, 43, 37–46.
  • Mukherjee, K.; Hazra, S.; Petkov, P.; Militzer, M. Critical comparison of novel and conventional processing for dual-phase steels. Materials and Manufacturing Processes 2007, 22 (4), 511–515.
  • Ganguly, S.; Datta, S.; Chattopadhyay, P.P.; Chakra, N. Designing the multiphase microstructure of steel for optimal TRIP effect: A multi-objective genetic algorithm based approach. Materials and Manufacturing Processes 2009, 24 (1), 31–37.
  • DeArdo, A.J.; Garcia, C.I.; Cho, K.; Hua, M. New method of characterizing and quantifying complex microstructures in steels. Materials and Manufacturing Processes 2010, 25 (1–3), 33–40.
  • Ding, R.; Tang, D.; Zhao, A.; Dong, R.; Cheng, J.; Zhang, X. A new type of quenching and partitioning processing developed from martensitic pre-microstructure. Materials and Manufacturing Processes 2010, 29 (6), 704–709.
  • Liu, X.; Zhi, Y.; Yu, H. Rolling technology with reducing resources in China. Materials and Manufacturing Processes 2010, 25 (1–3), 161–166.
  • Matlock, D.K.; Speer, J.G. Processing opportunities for new advanced high-strength sheet steels. Materials and Manufacturing Processes 2010, 25 (1), 7–13.
  • Mukherjee, M.; Bhattacharyya, T.; Singh, S.B. Models for austenite to martensite transformation in TRIP-aided steels: A comparative study. Materials and Manufacturing Processes 2010, 25 (1–3), 206–210.
  • Somani, M.C.; Karjalainen, L.P. Innovative approaches in physical simulation and modeling for optimal design and processing of advanced high strength steels. Materials and Manufacturing Processes 2010, 25 (1–3), 133–141.
  • Aktas, S.; Ozsarac, U.; Aslanlar, S. Effect of spot welding parameters on tensile properties of DP 600 steel sheet joints. Materials and Manufacturing Processes 2012, 27 (7), 756–764.
  • Halder, C.; Madej, L.; Pietrzyk, M.; Chakraborti, N. Optimization of cellular automata model for the heating of dual-phase steel by genetic algorithm and genetic programming. Materials and Manufacturing Processes 2015, 30 (4), 552–562.
  • Ushioda, K.; Takebayashi, S.; Abe, Y.R. Control of structures and properties of cold-rolled sheet steels. Materials and Manufacturing Processes 2010, 25 (1–3), 185–194.
  • Ghaheri, A.; Shafyei, A.; Honarmand, M. Effects of inter-critical temperatures on martensite morphology, volume fraction and mechanical properties of dual-phase steels obtained from direct and continuous annealing cycles. Materials and Design 2014, 62, 305–319.
  • Ramazani, A.; Ebrahimi, Z.; Prahl, U. Study the effect of martensite banding on the failure initiation in dual-phase steel. Computational Materials Science 2014, 87, 241–247.
  • Toudeshky, H.H.; Anbarlooie, B.; Kadkhodapour, J.; Shadalooyi, J. Microstructural deformation pattern and mechanical behavior analyses of DP600 dual phase steel. Materials Science & Engineering A 2014, 600, 108–121.
  • Wu, R.M.; Wang, L.; Jin, X.J. Thermal stability of austenite and properties of quenching & partitioning (Q&P) treated AHSS. Physics Procedia 2013, 50, 8–12.
  • Seyedrezai, H.; Pilkey, A.K.; Boyd, J.D. Effect of pre-IC annealing treatments on the final microstructure and work hardening behavior of a dual-phase steel. Materials Science & Engineering A 2014, 594, 178–188.
  • Armaki, H.G.; Maab, R.; Bhatt, S.P.; Sriram, S.; Greer, J.R.; Kumar, K.S. Deformation response of ferrite and martensite in a dual-phase steel. Acta Materialia 2014, 62, 197–211.
  • Xu, X.; Zwaag, S.; Xu, W. The effect of martensite volume fraction on the scratch and abrasion resistance of a ferrite–martensite dual phase. Wear 2016, 348–349, 80–88.
  • Pierman, A.P.; Bouaziz, O.; Pardoen, T.; Jacques, P.J.; Brassart, L. The influence of microstructure and composition on the plastic behaviour of dual-phase steels. Acta Materialia 2014, 73, 298–311.
  • Thomas, G.A.; Speer, J.G.; Matlock, D.K. Quenched and partitioned microstructure produced via Gleeble simulations of hot-strip mill cooling practices. Metallurgical and Materials Transactions A 2011, 42, 3652–3659.
  • Santofimia, M.J.; Zhao, L.; Sietsma, J. Overview of mechanisms involved during the quenching and partitioning process in steels. Metallurgical and Materials Transactions A 2011, 42, 3620–3626.
  • Bhagat, A.N.; Singh, A.; Gope, N.; Venugopalan, T. Development of cold-rolled high-strength formable steel for automotive applications. Materials and Manufacturing Processes 2010, 25 (1–3), 202–205.
  • Imandoust, A.; Hanzaki, A.Z.; Manesh, S.H.; Moemeni, S.; Changizian, P. Effects of ferrite volume fraction on the tensile deformation characteristics of dual phase twinning induced plasticity steel. Materials and Design 2014, 53, 99–105.
  • Sirinakorn, T.; Uthaisangsuk, V.; Srimanosawapal, S. Microstructure based description of deformation behavior of dual phase steel sheets. Procedia Engineering 2014, 81, 1366–1371.
  • Xiong, Z.P.; Kostryzhev, A.G.; Stanford, N.E.; Pereloma, E.V. Effect of deformation on microstructure and mechanical properties of dual phase steel produced via strip casting simulation. Materials Science and Engineering A 2016, 651, 291–305.
  • Zheng, C.; Raabe, D. Interaction between recrystallization and phase transformation during inter-critical annealing in a cold-rolled dual phase steel: A cellular automation model. Acta Materialia 2013, 61, 5504–5517.
  • Li, P.; Li, J.; Meng, Q.; Hu, W.; Xu, D. Effect of heating rate on recrystallization and austenite formation of cold rolled dual phase steel. Journal of Alloys and Compounds 2013, 578, 320–327.
  • Rajan, T.V.; Sharma, C.P.; Sharma, A. Heat Treatment Principles and Techniques; PHI Learning Private Limited: New Delhi, India, 2011; 72–75pp.
  • Babu, S.S.; Specht, E.D.; David, S.A.; Karapetrova, E.; Zschack, P.; Peet, M.; Bhadeshia, H.K.D.H. In-situ observations of lattice parameter fluctuations in austenite and transformation to bainite. Metallurgical and Materials Transactions A 2005, 36, 3281–3289.
  • Speer, J.G.; Edmonds, D.V.; Rizzo, F.C.; Matlock, D.K. Partitioning of carbon from supersaturated plates of ferrite, with application to steel processing and bainite transformation fundamentals. Current Opinion in Solid State & Materials Science 2004, 8, 219–237.
  • Chupatanakul, S.; Nash, P.; Chen, D. Carbon partitioning during bainite transformation in 4317 type steels. Metals and Materials International 2006, 12 (6), 453–458.
  • Speer, J.; Matlock, D.K.; DeCooman, B.C.; Schroth, J.G. Carbon partitioning into austenite after martensite transformation. Acta Materialia 2003, 51, 2611–2622.
  • Clarke, A.J.; Speer, J.G.; Miller, M.K.; Hackenberg, R.E.; Edmonds, D.V.; Matlock, D.K.; Rizzo, F.C.; Clarke, K.D.; DeMoor, E. Carbon partitioning to austenite from martensite or bainite during the quench and partition (Q&P) process: A critical assessment. Acta Materialia 2008, 56, 16–22.
  • Meng, Q.; Li, J.; Zheng, H. High-efficiency fast-heating annealing of a cold-rolled dual-phase steel. Materials and Design 2014, 58, 194–197.
  • Zhang, J.; Di, H.; Deng, Y.; Misra, R.D.K. Effect of martensite morphology and volume fraction on strain hardening and fracture behavior of martensite–ferrite dual phase steel. Materials Science and Engineering A 2015, 627, 230–240.
  • Saeidi, N.; Ekrami, A. Comparison of mechanical properties of martensite/ferrite and bainite/ferrite dual phase 4340 steels. Materials Science and Engineering A 2009, 523, 125–129.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.