About this Abstract |
Meeting |
2025 TMS Annual Meeting & Exhibition
|
Symposium
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Bridging Scale Gaps in Multiscale Materials Modeling in the Age of Artificial Intelligence
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Presentation Title |
Rethinking materials simulations; blending direct numerical simulations with machine-learning strategies |
Author(s) |
Remi Dingreville |
On-Site Speaker (Planned) |
Remi Dingreville |
Abstract Scope |
Machine learning is transforming computational materials science by offering tools
to accelerate forward simulations, unveil hidden patterns, and ultimately support computational pipelines for all sorts of materials and mechanical analyses. In this talk, I will review recent advances to blend direct numerical solvers with various machine-learning strategies to accelerate materials simulations. I will discuss some of the challenges related to interpolation and extrapolation along with the efficacy and accuracy of such strategies. I will end this talk by providing some thoughts on upcoming opportunities related to generalization and path for a broader adoption. SNL is managed and operated by NTESS under DOE NNSA contract DE-NA0003525. |
Proceedings Inclusion? |
Planned: |
Keywords |
Computational Materials Science & Engineering, Machine Learning, Modeling and Simulation |