Home > Research > Publications & Outputs > Thermostatistical modelling of hot deformation ...
View graph of relations

Thermostatistical modelling of hot deformation in FCC metals

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published

Standard

Thermostatistical modelling of hot deformation in FCC metals. / Galindo-Nava, E. I.; Rivera-Díaz-Del-Castillo, P. E.J.
In: International Journal of Plasticity, Vol. 47, 08.2013, p. 202-221.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

APA

Vancouver

Galindo-Nava EI, Rivera-Díaz-Del-Castillo PEJ. Thermostatistical modelling of hot deformation in FCC metals. International Journal of Plasticity. 2013 Aug;47:202-221. doi: 10.1016/j.ijplas.2013.02.002

Author

Galindo-Nava, E. I. ; Rivera-Díaz-Del-Castillo, P. E.J. / Thermostatistical modelling of hot deformation in FCC metals. In: International Journal of Plasticity. 2013 ; Vol. 47. pp. 202-221.

Bibtex

@article{db3604f5b7ba42c5bc4dd83eaec651c6,
title = "Thermostatistical modelling of hot deformation in FCC metals",
abstract = "A novel thermostatistical approach to describe hot deformation of unary and multicomponent FCC alloys undergoing dynamic recrystallization (DRX) is presented. The approach incorporates an additional softening effect to the Kocks-Mecking equation, which becomes active once a critical incubation strain for recrystallization is achieved. Multicomponent effects are incorporated into the equation to account for solid solution strengthening and recrystallization effects. The dislocation density evolution with strain can be prescribed as a function of temperature, strain rate and composition. The presented unified approach describes stages II, III and IV of deformation, the latter being substituted by DRX when this becomes energetically favourable. It recovers the stress values as steady state is approached, and captures well the temperature-strain rate-composition dependency of DRX allowing to map the conditions under which it occurs. The theory successfully describes the dynamic recrystallization behaviour of Cu, Ni, Ni30Fe, Ni21Cr, Fe30Ni, Fe18Cr8Ni, Fe25Cr20Ni and Ni21Cr8Mo3Nb. Input to the model are only physical parameters and thermodynamic information from well accepted databases. It is shown that the design of alloys for tailored DRX behaviour is possible under this formulation.",
keywords = "A. Dislocations, A. Microstructures, A. Strengthening mechanisms, B. Metallic material, Dynamic recrystallization",
author = "Galindo-Nava, {E. I.} and Rivera-D{\'i}az-Del-Castillo, {P. E.J.}",
year = "2013",
month = aug,
doi = "10.1016/j.ijplas.2013.02.002",
language = "English",
volume = "47",
pages = "202--221",
journal = "International Journal of Plasticity",
issn = "0749-6419",
publisher = "Elsevier Ltd",

}

RIS

TY - JOUR

T1 - Thermostatistical modelling of hot deformation in FCC metals

AU - Galindo-Nava, E. I.

AU - Rivera-Díaz-Del-Castillo, P. E.J.

PY - 2013/8

Y1 - 2013/8

N2 - A novel thermostatistical approach to describe hot deformation of unary and multicomponent FCC alloys undergoing dynamic recrystallization (DRX) is presented. The approach incorporates an additional softening effect to the Kocks-Mecking equation, which becomes active once a critical incubation strain for recrystallization is achieved. Multicomponent effects are incorporated into the equation to account for solid solution strengthening and recrystallization effects. The dislocation density evolution with strain can be prescribed as a function of temperature, strain rate and composition. The presented unified approach describes stages II, III and IV of deformation, the latter being substituted by DRX when this becomes energetically favourable. It recovers the stress values as steady state is approached, and captures well the temperature-strain rate-composition dependency of DRX allowing to map the conditions under which it occurs. The theory successfully describes the dynamic recrystallization behaviour of Cu, Ni, Ni30Fe, Ni21Cr, Fe30Ni, Fe18Cr8Ni, Fe25Cr20Ni and Ni21Cr8Mo3Nb. Input to the model are only physical parameters and thermodynamic information from well accepted databases. It is shown that the design of alloys for tailored DRX behaviour is possible under this formulation.

AB - A novel thermostatistical approach to describe hot deformation of unary and multicomponent FCC alloys undergoing dynamic recrystallization (DRX) is presented. The approach incorporates an additional softening effect to the Kocks-Mecking equation, which becomes active once a critical incubation strain for recrystallization is achieved. Multicomponent effects are incorporated into the equation to account for solid solution strengthening and recrystallization effects. The dislocation density evolution with strain can be prescribed as a function of temperature, strain rate and composition. The presented unified approach describes stages II, III and IV of deformation, the latter being substituted by DRX when this becomes energetically favourable. It recovers the stress values as steady state is approached, and captures well the temperature-strain rate-composition dependency of DRX allowing to map the conditions under which it occurs. The theory successfully describes the dynamic recrystallization behaviour of Cu, Ni, Ni30Fe, Ni21Cr, Fe30Ni, Fe18Cr8Ni, Fe25Cr20Ni and Ni21Cr8Mo3Nb. Input to the model are only physical parameters and thermodynamic information from well accepted databases. It is shown that the design of alloys for tailored DRX behaviour is possible under this formulation.

KW - A. Dislocations

KW - A. Microstructures

KW - A. Strengthening mechanisms

KW - B. Metallic material

KW - Dynamic recrystallization

U2 - 10.1016/j.ijplas.2013.02.002

DO - 10.1016/j.ijplas.2013.02.002

M3 - Journal article

AN - SCOPUS:84879095811

VL - 47

SP - 202

EP - 221

JO - International Journal of Plasticity

JF - International Journal of Plasticity

SN - 0749-6419

ER -