Drying-induced stresses in poroelastic drops on rigid substrates
File(s)PhysRevE.105.054602.pdf (2.18 MB)
Published version
Author(s)
Hennessy, Matthew G
Craster, Richard
Matar, Omar K
Type
Journal Article
Abstract
We develop a theory for drying-induced stresses in sessile, poroelastic drops undergoing evaporation on rigid surfaces. Using a lubrication-like approximation, the governing equations of three-dimensional nonlinear poroelasticity are reduced to a single thin-film equation for the drop thickness. We find that thin drops experience compressive elastic stresses but the total in-plane stresses are tensile. The mechanical response of the drop is dictated by the initial profile of the solid skeleton, which controls the in-plane deformation, the dominant components of elastic stress, and sets a limit on the depth of delamination that can potentially occur. Our theory suggests that the alignment of desiccation fractures in colloidal drops is selected by the shape of the drop at the point of gelation. We propose that the emergence of three distinct fracture patterns in dried blood drops is a consequence of a nonmonotonic drop profile at gelation. We also show that depletion fronts, which separate wet and dry solid, can invade the drop from the contact line and localize the generation of mechanical stress during drying. Finally, the finite element method is used to explore the stress profiles in drops with large contact angles.
Date Issued
2022-05-04
Date Acceptance
2022-04-11
Citation
Physical Review E, 2022, 105 (5)
ISSN
2470-0045
Publisher
American Physical Society
Journal / Book Title
Physical Review E
Volume
105
Issue
5
Copyright Statement
©2022 American Physical Society
Identifier
http://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000798842200004&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Subjects
Science & Technology
Physical Sciences
Physics, Fluids & Plasmas
Physics, Mathematical
Physics
PATTERN-FORMATION
RELATIVE-HUMIDITY
EVAPORATION RATE
FLOW
DEFORMATION
PROPAGATION
SURFACE
CRACKS
Publication Status
Published
OA Location
https://arxiv.org/pdf/2111.06992.pdf
Article Number
ARTN 054602