Defining the pressures of a fluid in a nanoporous, heterogeneous medium
Galteland, Olav; Rauter, Michael Tobias; Varughese, Kevin K.; Bedeaux, Dick; Kjelstrup, Signe Helene
Journal article
Published version
Permanent lenke
https://hdl.handle.net/11250/3033727Utgivelsesdato
2022Metadata
Vis full innførselSamlinger
- Institutt for kjemi [1447]
- Publikasjoner fra CRIStin - NTNU [41088]
Originalversjon
10.3389/fphy.2022.866577Sammendrag
We describe the thermodynamic state of a single-phase fluid confined to a porous medium with Hill's thermodynamics of small systems, also known as nanothermodynamics. This way of defining small system thermodynamics, with a separate set of control variables, may be useful for the study of transport in non-deformable porous media, where presently no consensus exists on pressure computations. For a confined fluid, we observe that there are two pressures, the integral and the differential pressures. We use molecular simulations to investigate and confirm the nanothermodynamic relations for a representative elementary volume (REV). For a model system of a single-phase fluid in a face-centered cubic lattice of solid spheres of varying porosity, we calculate the fluid density, fluid-solid surface tension, replica energy, integral pressure, entropy, and internal energy.