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subsurface fluid flow

Physics-Informed Spatiotemporal Surrogate Modeling and Robust Operational Optimization for CO₂ Applications in Subsurface Flow under Permeability Uncertainty

Zhao Beichen, Visiting Student, Applied Mathematics and Computational Science
Sep 17, 12:00 - 13:00

B9 R2325

Physics-informed Neural Networks Deep learning numerical simulations uncertainty quantification subsurface fluid flow

This talk presents a physics-informed spatiotemporal surrogate that predicts coupled CO₂ storage and geothermal responses under geological uncertainty and enables rapid, risk-aware optimization of staged well controls.

Computer, Electrical and Mathematical Sciences and Engineering (CEMSE)

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