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FEM-based modeling of dynamic recrystallization of AISI 52100 steel using cellular automaton method

  • K. L. Wang
  • , M. W. Fu
  • , J. Lu

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

The dynamic recrystallization (DRX) behavior in the isothermal hot compression of AISI 52100 steel was analyzed by using the phenomenological-based cellular automaton (CA) algorithm. The developed CA model was coded into DEFORM platform, which is a Finite Element Method (FEM)-based software for simulation of material deformation process. The developed CA-model can thus predict the nucleation and growth kinetics of dynamically recrystallized grains of the testing material in hot working process. Furthermore, the effects of the deformation temperature, true strain and strain rate on the microstructural evolution of the testing material were physically studied by using Gleeble-1500 thermo-mechanical simulator and the developed CA-model was verified by the experimental results. Through simulation and experiment, it is found that the results predicted by the CA-model have a good agreement with the experimental ones. © (2010) Trans Tech Publications.
Original languageEnglish
Title of host publicationAdvances in Precision Engineering
Pages406-411
Volume447 448
DOIs
Publication statusPublished - 2010
Externally publishedYes
EventICoPE2010 and 13th ICPE International Conference on Precision Engineering - , Singapore
Duration: 28 Jul 201030 Jul 2010

Publication series

NameKey Engineering Materials
Volume447 448
ISSN (Print)1013-9826

Conference

ConferenceICoPE2010 and 13th ICPE International Conference on Precision Engineering
PlaceSingapore
Period28/07/1030/07/10

Research Keywords

  • AISI 52100 steel
  • Cellular automaton
  • Dynamic recrystallization

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