Effect of Confinement on Capillary Phase Transition in Granular Aggregates - Laboratoire de Mécanique et Génie Civil Accéder directement au contenu
Article Dans Une Revue Physical Review Letters Année : 2020

Effect of Confinement on Capillary Phase Transition in Granular Aggregates

Résumé

Using a 3D mean-field lattice-gas model, we analyze the effect of confinement on the nature of capillary phase transition in granular aggregates with varying disorder and their inverse porous structures obtained by interchanging particles and pores. Surprisingly, the confinement effects are found to be much less pronounced in granular aggregates as opposed to porous structures. We show that this discrepancy can be understood in terms of the surface-surface correlation length with a connected path through the fluid domain, suggesting that this length captures the true degree of confinement. We also find that the liquid-gas phase transition in these porous materials is of second order nature near capillary critical temperature, which is shown to represent a true critical temperature, i.e., independent of the degree of disorder and the nature of the solid matrix, discrete or continuous. The critical exponents estimated here from finite-size scaling analysis suggest that this transition belongs to the 3D random field Ising model universality class as hypothesized by F. Brochard and P.G. de Gennes, with the underlying random fields induced by local disorder in fluid-solid interactions.
Fichier principal
Vignette du fichier
Ioannidou_al_PRL_2020.pdf (897.61 Ko) Télécharger le fichier
Origine : Fichiers éditeurs autorisés sur une archive ouverte

Dates et versions

hal-03100486 , version 1 (19-01-2021)

Identifiants

Citer

Siavash Monfared, Tingtao Zhou, José Andrade, Katerina Ioannidou, Farhang Radjai, et al.. Effect of Confinement on Capillary Phase Transition in Granular Aggregates. Physical Review Letters, 2020, 125 (25), pp.255501. ⟨10.1103/PhysRevLett.125.255501⟩. ⟨hal-03100486⟩
85 Consultations
99 Téléchargements

Altmetric

Partager

Gmail Facebook X LinkedIn More