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Dynamics of particle aggregation in dewetting films of complex liquids

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posted on 2024-10-07, 12:27 authored by James Zhang, David SibleyDavid Sibley, Dmitri TseluikoDmitri Tseluiko, Andrew ArcherAndrew Archer

We consider the dynamic wetting and dewetting processes of films and droplets of complex liquids on planar surfaces, focusing on the case of colloidal suspensions, where the particle interactions can be sufficiently attractive to cause agglomeration of the colloids within the film. This leads to an interesting array of dynamic behaviours within the liquid and of the liquid-air interface. Incorporating concepts from thermodynamics and using the thin-film approximation, we construct a model consisting of a pair of coupled partial differential equations that represent the evolution of the liquid film and the effective colloidal height profiles.We determine the relevant phase behaviour of the uniform system, including finding associated binodal and spinodal curves, helping to uncover how the emerging behaviour depends on the particle interactions. Performing a linear stability analysis of our system enables us to identify parameter regimes where agglomerates form, which we independently confirm through numerical simulations and continuation of steady states, to construct bifurcation diagrams. We obtain various dynamics such as uniform colloidal profiles in an unstable situation evolving into agglomerates and thus elucidate the interplay between dewetting and particle aggregation in complex liquids on surfaces.

Funding

Maths Research Associates 2021 Loughborough

Engineering and Physical Sciences Research Council

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History

School

  • Science

Department

  • Mathematical Sciences

Published in

Journal of Fluid Mechanics

Volume

90

Pages

1 - 40

Publisher

Cambridge University Press (CUP)

Version

  • VoR (Version of Record)

Rights holder

© The Author(s)

Publisher statement

This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.

Acceptance date

2024-04-29

Publication date

2024-08-12

Copyright date

2024

ISSN

0022-1120

eISSN

1469-7645

Language

  • en

Depositor

Prof Andrew Archer. Deposit date: 1 May 2024

Article number

A10

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