Constrained Transformer-Based Porous Media Generation to Spatial Distribution of Rock Properties
Zihan Ren, Sanjay Srinivasan, Dustin Crandall

TL;DR
This paper introduces a novel two-stage deep learning framework combining VQVAE and transformer models to generate large-scale, spatially consistent 3D porous media models from micro-CT data, improving the representation of transport properties.
Contribution
It presents a new multi-token transformer approach for spatial upscaling of porous media, capturing spatial distribution and properties at field scale from micro-scale data.
Findings
Effective generation of large-scale porous media models
Accurate modeling of permeability and relative permeability
Preservation of sub-volume integrity and spatial relationships
Abstract
Pore-scale modeling of rock images based on information in 3D micro-computed tomography data is crucial for studying complex subsurface processes such as CO2 and brine multiphase flow during Geologic Carbon Storage (GCS). While deep learning models can generate 3D rock microstructures that match static rock properties, they have two key limitations: they don't account for the spatial distribution of rock properties that can have an important influence on the flow and transport characteristics (such as permeability and relative permeability) of the rock and they generate structures below the representative elementary volume (REV) scale for those transport properties. Addressing these issues is crucial for building a consistent workflow between pore-scale analysis and field-scale modeling. To address these challenges, we propose a two-stage modeling framework that combines a Vector…
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Taxonomy
TopicsSeismic Imaging and Inversion Techniques · Computer Graphics and Visualization Techniques · Image Processing and 3D Reconstruction
