Title of article :
Modelling of the plastic flow of trip-aided multiphase steel based on an incremental mean-field approach
Author/Authors :
L. Delannay، نويسنده , , P. Jacques، نويسنده , , T. Pardoen، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2008
Abstract :
An incremental mean-field model is developed for the prediction of transformation induced plasticity (TRIP) in multiphase
steel. The partitioning of strain between softer and harder constituents is computed based on an elastic-plastic
Mori–Tanaka approach that accounts for the progressive transformation of austenite into martensite. The latter transformation
is predicted using an energy-balance criterion that is formulated at the level of individual austenite grains. The
model has been tested against experimental data. Macroscopic stress-strain curves and rate of martensite formation have
been measured on sheet samples subjected to various loading modes: uniaxial tension, simple shear, and (in-plane) uniaxial
compression. These experiments were performed at 20 C and the uniaxial tensile test was repeated at 30 C. The meanfield
model produces fair predictions of the macroscopic hardening resulting from TRIP on the condition that a sufficient
proportion of the load is carried by the very hard martensite inclusions. Such prediction implies that one accounts for the
stress heterogeneity across the ferrite-based matrix. At the same time, the model reproduces the elastic lattice strains and
the plastic elongation which are measured within the phases by neutron diffraction and by image correlation in a scanning
electron microscope, respectively. The model can be used in finite element simulations of forming processes which is illustrated
in a study of necking of a cylindrical bar under uniaxial tension.
Keywords :
Formability , martensite , Internal stresses , Micro–macro homogenization
Journal title :
International Journal of Solids and Structures
Journal title :
International Journal of Solids and Structures