Publication | Open Access
General modeling of flow stress curves of alloys at elevated temperatures using bi-linearly interpolated or closed-form functions for material parameters
27
Citations
23
References
2019
Year
EngineeringMechanical EngineeringSoftening ConstantsComputational MechanicsWork HardeningStrain RateGeneral ModelingNumerical SimulationStressstrain AnalysisMaterial ParametersMaterials ScienceHot WorkingSolid MechanicsMetal FormingThermomechanical ProcessingMicrostructureFlow Stress CurvesAlloy DesignConstitutive ModelingPromising ModelAlloy CastingMechanics Of MaterialsHigh Strain RateMultiscale Modeling
In this study, a promising model is presented to describe the flow stress curves with acceptable accuracy as well as generality. In this model, peak strain, peak stress, steady-state stress and hardening and softening constants are uncoupled and expressed as either bi-linearly interpolated or closed-form functions of temperature and strain rate. A practical method to obtain material constants is developed to render the model applicable in practice, which is based on optimization scheme. The flow stress curves of four materials are obtained using the new model and compared with experiments or the other models at some specific temperatures and strain rates. The comparison has revealed that the new model is feasible and general to describe the flow stress curves of various metals and alloys at different temperatures and strain rates with acceptable accuracy.
| Year | Citations | |
|---|---|---|
Page 1
Page 1