Publication:
Tuning capillary penetration in porous media: Combining geometrical and evaporation effects

dc.contributor.author Liu, M
dc.contributor.author Wu, J
dc.contributor.author Gan, Y
dc.contributor.author Hanaor, DAH
dc.contributor.author Chen, CQ
dc.date.accessioned 2024-03-25T17:09:07Z
dc.date.available 2024-03-25T17:09:07Z
dc.date.issued 2018-08-01
dc.date.submitted 2024-03-25T17:09:07Z
dc.description.abstract Capillary penetration of liquids in porous media is of great importance in many applications and the ability to tune such penetration processes is increasingly sought after. In general, liquid penetration can be retarded or restricted by the evaporation of volatile liquid at the surface of the porous media. Moreover, when capillary penetration occurs in a porous layer with non-uniform cross section, the penetration process can be accelerated or impeded by adjusting the section geometry. In this work, on the basis of Darcy's Law and mass conservation, a theoretical model of capillary penetration combining evaporation effects in two-dimensional homogeneous porous media of varying cross-section is developed and further examined by numerical simulations. The effects of sample geometry and liquid evaporation on capillary penetration are quantitatively analyzed. Results show that the penetration velocity is sensitive to the geometry of the porous layer, and can be tuned by varying the evaporation rate for a given geometry. Under given evaporation conditions, penetration is restricted to a limited region with a predictable boundary. Furthermore, we find that the inhibition of liquid penetration by evaporation can be offset by varying the geometry of the porous layer. The theoretical model is further extended to model the capillary flow in three-dimensional porous media. The interplay of geometry and evaporation during the capillary flow process in 3D conditions is also investigated. The results obtained can be used to facilitate the design of porous structures to achieve tunable capillary penetration for practical applications in various fields.
dc.identifier.issn 0017-9310
dc.identifier.issn 1879-2189
dc.identifier.uri http://hdl.handle.net/1959.4/unsworks_60951
dc.publisher Elsevier
dc.rights CC-BY-NC-ND
dc.rights.uri https://creativecommons.org/licenses/by-nc-nd/4.0/
dc.source Symplectic Elements
dc.title Tuning capillary penetration in porous media: Combining geometrical and evaporation effects
dc.type Journal Article
dcterms.accessRights open access
dspace.entity.type Publication
unsw.accessRights.uri https://purl.org/coar/access_right/c_abf2
unsw.identifier.doiPublisher https://doi.org/10.1016/j.ijheatmasstransfer.2018.02.101
unsw.relation.faculty Science
unsw.relation.ispartofjournal International Journal of Heat and Mass Transfer
unsw.relation.ispartofpagefrom 239
unsw.relation.ispartofpageto 250
unsw.relation.ispartofvolume 123
unsw.relation.school Sch of Materials Sci & Eng
unsw.subject.fieldofresearchcode 01 Mathematical Sciences
unsw.subject.fieldofresearchcode 02 Physical Sciences
unsw.subject.fieldofresearchcode 09 Engineering
unsw.type.description Journal Article
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