Direct observation of anomalous CO<sub>2</sub> dispersion in multi-scale porous media.
basic_science · Level V
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- Record sourced from PubMed, PMID 42304689.
- Also identified by DOI 10.1039/d6lc00244g.
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Abstract
CO<sub>2</sub> dispersion dynamics in multi-scale porous media is critical for various environmental applications. The heterogeneity of natural porous media leads to immobile zones and preferential flow paths, resulting in a broad distribution of local velocity and giving rise to anomalous dispersion. Existing experimental methods find it challenging to establish multi-scale porous media for observing the anomalous dispersion of CO<sub>2</sub> at high temporal-spatial resolution. To address this gap, we developed a novel visualization method based on micromodels and a colorimetric method. The visualization of CO<sub>2</sub> dispersion during CO<sub>2</sub> drainage revealed that the reduced connectivity of porous media causes CO<sub>2</sub> sub-dispersion, while high CO<sub>2</sub> injection rates promote super-dispersion. In the fractured porous media, capillary force balance further induced anomalous multi-stage CO<sub>2</sub> dispersion. The preferential flow of CO<sub>2</sub> solute in large fractures significantly influences CO<sub>2</sub> dispersion in the matrix. Our study reveals the synergistic effects of microscope heterogeneity of porous media and solute injection rate on dispersion dynamics, with important implications on CO<sub>2</sub> geological sequestration and transport of subsurface contaminants.