Title of article :
Modeling of the influence of coarsening on viscoplastic behavior of a 319 foundry aluminum alloy
Author/Authors :
Martinez، نويسنده , , R. and Russier، نويسنده , , V. and Couzinié، نويسنده , , J.P. and Guillot، نويسنده , , I. and Cailletaud، نويسنده , , G.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2013
Abstract :
Both metallurgical and mechanical behaviors of a 319 foundry aluminum alloy have been modeled by means of a multiscale approach. The nano-scale, represented by the coarsening of Al2Cu precipitates, has been modeled according to the Lifshitz–Slyozov–Wagner (LSW) law in a range of temperature going from 23 °C to 300 °C up to 1000 h aging time. Results were then compared to transmission electron microscope (TEM) observations and are in good agreement with the experimental measurements. The model allows us to know the critical radius, the volume fraction and the number of particles per μ m 3 in a α - phase representative volume element (RVE). The increase in yield stress generated by the interaction of dislocations with precipitates, lattice and solid solution, is modeled on the microscale. The yield stress becomes thus a function of the precipitation state, and is time/temperature dependent. These two models were then combined into a mechanical macroscale model in order to represent the Low Cycle Fatigue (LCF) behavior of the material. An elasto-viscoplastic law has been used and all the material parameters were experimentally determined with LCF stress/strain loops for the first cycle and for the mechanical steady state. The simulation results are in good agreement with the experiments.
Keywords :
319 Foundry aluminum alloy , multiscale modeling , Low cycle fatigue behavior , Al2Cu coarsening , yield stress , Transmission electron microscope
Journal title :
MATERIALS SCIENCE & ENGINEERING: A
Journal title :
MATERIALS SCIENCE & ENGINEERING: A