The dynamic interaction of complex fluid interfaces is highly sensitive to near-contact interactions occurring at the scale of ten of nanometers. Such interactions are difficult to analyze because they couple self-consistently to the dynamic morphology of the evolving interface, as well as to the hydrodynamics of the interstitial fluid film. In this work, we show that, above a given magnitude threshold, near-contact interactions trigger nontrivial microvorticity patterns, which in turn affect the effective near-contact interactions, giving rise to persistent fluctuating ripples at the fluid interface. In such a regime, near-contact interactions may significantly affect the macroscopic arrangement of emulsion configurations, such as those arising in soft-flowing microfluidic crystals.

Microvorticity fluctuations affect the structure of thin fluid films

Tiribocchi A;Montessori A;Lauricella M;Succi S
2019

Abstract

The dynamic interaction of complex fluid interfaces is highly sensitive to near-contact interactions occurring at the scale of ten of nanometers. Such interactions are difficult to analyze because they couple self-consistently to the dynamic morphology of the evolving interface, as well as to the hydrodynamics of the interstitial fluid film. In this work, we show that, above a given magnitude threshold, near-contact interactions trigger nontrivial microvorticity patterns, which in turn affect the effective near-contact interactions, giving rise to persistent fluctuating ripples at the fluid interface. In such a regime, near-contact interactions may significantly affect the macroscopic arrangement of emulsion configurations, such as those arising in soft-flowing microfluidic crystals.
2019
Istituto Applicazioni del Calcolo ''Mauro Picone''
Inglese
100
4
7
Sì, ma tipo non specificato
microfluidics
Lattice Boltzmann
computational fluid dynamics
6
info:eu-repo/semantics/article
262
Tiribocchi, A; Montessori, A; Miliani, S; Lauricella, M; La Rocca, M; Succi, S
01 Contributo su Rivista::01.01 Articolo in rivista
none
   Full-scale COmputational design of Porous mesoscale MATerials
   COPMAT
   H2020
   739964
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/394394
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