Microstructure based prediction and homogenization of the strain hardening behavior of dual-phase steel

被引:0
作者
Florian Rieger
Thomas Böhlke
机构
[1] Karlsruhe Institute of Technology (KIT),Chair for Continuum Mechanics, Institute of Engineering Mechanics
来源
Archive of Applied Mechanics | 2015年 / 85卷
关键词
Dual-phase steel; Work hardening; Micromechanical modeling; Representative volume element; Crystal plasticity; Mean-field modeling;
D O I
暂无
中图分类号
学科分类号
摘要
The mechanical behavior of automotive dual-phase steel (DP) is modeled by two different approaches: with a full-field representative volume element (RVE) and with a mean-field model. In the first part of this work, the full-field RVE is constituted by a crystal plasticity-based ferrite matrix with von Mises-type martensite inclusions. To isolate the martensite influence, the full-field DP results were compared to a full-field comparison RVE. In the comparison RVE, all martensite inclusions were replaced by a phase that exhibits the average ferrite behavior. A higher relative martensite grain boundary coverage facilitates an increased average dislocation density after quenching. However, for uniaxial deformations above ∼10%, the grain size-dependent relation reverses and exhibits slowed-down hardening. In the second part, we incorporate the main findings from the full-field simulations into a nonlinear mean-field model of Hashin–Shtrikman type. The dislocation density production parameter and the saturated dislocation density are modeled based on grain size and martensite coverage. The comparison of both approaches shows good agreement for both the overall and constituent averaged behavior.
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页码:1439 / 1458
页数:19
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共 120 条
  • [21] Delincé M.(1984)Dislocation substructure as a function of strain in a dual-phase steel Metall. Mater. 15 1221-1228
  • [22] Bréchet Y.(2008)Advanced high strength steels for automotive industry Arch. Civil Mech. Eng. 8 103-117
  • [23] Embury J.(2013)Influence of strain rate, temperature, plastic strain, and microstructure on the strain rate sensitivity of automotive sheet steels Steel Res. Int. 84 426-442
  • [24] Geers M.(2002)An unexpected feature of the stress–strain diagram of dual-phase steel Comput. Mater. Sci. 25 122-128
  • [25] Jacques P.(2001)On optimal zeroth-order bounds with application to Hashin–Shtrikman bounds and anisotropy parameters Int. J. Solids Struct. 38 7945-7965
  • [26] Pardoen T.(2014)Effect of the martensite distribution on the strain hardening and ductile fracture behaviors in dual-phase steel Mater. Sci. Eng.: A 604 135-141
  • [27] Dillien S.(2009)A representative grain size for the mechanical response of polycrystals Mater. Sci. Eng.: A 525 78-82
  • [28] Seefeldt M.(2011)Modelling the plastic behaviour of metals under complex loading conditions Model. Simul. Mater. Sci. Eng. 19 035009-48
  • [29] Allain S.(2013)Dislocation-based model for the prediction of the behavior of bcc materials—grain size and strain path effects Int. J. Plast. 47 29-4530
  • [30] Bouaziz O.(2003)Unified formulation to predict the tensile curves of steels with different microstructures Mater. Sci. Forum 426 4525-379