Intergranular Strain Evolution During Biaxial Loading: A Multiscale FE-FFT Approach.
M V Upadhyay1, J Capek1,2,3, S Van Petegem1
11Swiss Light Source, Paul Scherrer Institute, 5232 Villigen PSI, Switzerland.
This study uses a multiscale approach to analyze intergranular lattice strain in 316L steel under various loads. Grain neighborhood significantly influences strain evolution, impacting material behavior prediction.
Area of Science:
- Materials Science
- Mechanical Engineering
- Computational Modeling
Background:
- Predicting metal and alloy mechanical response requires multiscale models and characterization.
- Understanding intergranular strain evolution is crucial for material behavior prediction.
Purpose of the Study:
- To investigate intergranular lattice strain evolution in 316L steel using a multiscale approach.
- To compare strain evolution under uniaxial and equibiaxial loading conditions.
Main Methods:
- In situ neutron diffraction on dog bone and cruciform 316L samples.
- Finite element simulations for macroscale stress analysis.
- Fast Fourier Transform (FFT) crystal plasticity model for mesoscale simulations.
Main Results:
- Demonstrated differences in intergranular lattice strain evolution across various grain families.
- Highlighted the influence of grain neighborhood on strain development.
- Validated the multiscale approach for predicting mechanical response.
Conclusions:
- The multiscale modeling framework accurately captures complex material behavior.
- Grain neighborhood is a critical factor in intergranular strain evolution.
- This approach enhances the prediction of mechanical responses in metals and alloys.
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