Dispersive transport dynamics in porous media emerge from local correlations

2022 | journal article. A publication with affiliation to the University of Göttingen.

Jump to: Cite & Linked | Documents & Media | Details | Version history

Cite this publication

​Dispersive transport dynamics in porous media emerge from local correlations​
Meigel, F. J.; Darwent, T.; Bastin, L.; Goehring, L. & Alim, K.​ (2022) 
Nature Communications13(1).​ DOI: https://doi.org/10.1038/s41467-022-33485-5 

Documents & Media

document.pdf2.91 MBAdobe PDF

License

Published Version

Attribution 4.0 CC BY 4.0

Details

Authors
Meigel, Felix J.; Darwent, Thomas; Bastin, Leonie; Goehring, Lucas; Alim, Karen
Abstract
Abstract Understanding and controlling transport through complex media is central for a plethora of processes ranging from technical to biological applications. Yet, the effect of micro-scale manipulations on macroscopic transport dynamics still poses conceptual conundrums. Here, we demonstrate the predictive power of a conceptual shift in describing complex media by local micro-scale correlations instead of an assembly of uncorrelated minimal units. Specifically, we show that the non-linear dependency between microscopic morphological properties and macroscopic transport characteristics in porous media is captured by transport statistics on the level of pore junctions instead of single pores. Probing experimentally and numerically transport through two-dimensional porous media while gradually increasing flow heterogeneity, we find a non-monotonic change in transport efficiency. Using analytic arguments, we built physical intuition on how this non-monotonic dependency emerges from junction statistics. The shift in paradigm presented here broadly affects our understanding of transport within the diversity of complex media.
Issue Date
2022
Journal
Nature Communications 
Organization
Max-Planck-Institut für Dynamik und Selbstorganisation 
eISSN
2041-1723
Language
English

Reference

Citations


Social Media