Published March 22, 2024 | Version v1
Journal article

Sol-gel transition by evaporation in porous media

  • 1. Institute of Physics, University of Amsterdam, The Netherlands
  • 2. Department of Applied Physics, Eindhoven University of Technology, The Netherlands
  • 3. Universite de Pau et des Pays de l'Adour, E2S UPPA, CNRS, TotalEnergies, LFCR, Pau, France
  • 4. Universite de Pau et des Pays de l'Adour, E2S UPPA, CNRS, DMEX, Pau, France
  • 5. Synchrotron Soleil, Saint-Aubin, France

Description

Historical monuments, outdoor stone sculptures, and artworks made of porous materials are exposed to chemical and physical degradations over time. Presently, the most promising route for consolidation of weakened porous materials is the injection of viscoelastic solutions of polymerizing compounds. Those compounds, after injection, undergo a sol-gel transition inside the porous media through evaporation of the solvent. Finding a suitable gelifying solution as a consolidant calls for understanding the drying kinetics of viscoelastic fluids in porous media. Here, we present a multiscale study of the drying kinetics of fluids during the sol-gel transition in porous materials using NMR and x-ray microtomography techniques. We find that from the early stage of the drying, a heterogeneous desaturation develops and advances from the free surface of evaporation towards the inner parts of the stone. We identify different drying periods, which appear to be dependent on the intrinsic properties of the porous medium influencing strongly the homogeneity of the final gel distribution within a treated stone. Our findings not only are relevant for the consolidation of porous artworks but also for civil and soil engineering processes where the fluids considered are generally more complex than water.

Additional details

Identifiers

DOI
10.1103/PhysRevApplied.21.034049;
arXiv
arXiv:2311.09990;
Crossref Funder ID
10.13039/501100001665; 10.13039/100010663;

Publishing Information

Journal Title
Physical Review Applied
Journal Volume
21
Journal Issue
3
Journal Page Range
13 pgs.
ISSN
2331-7019

Optional Information

Copyright
© 2024 American Physical Society
Contract/Grant/Project number
850853
Notes
Contact Email: r.ledizes2@uva.nl; Record automatically processed
Funding organization
French National Research Agency; European Research Council