Issue 7, 2024

Evolution dynamics of thin liquid structures investigated using a phase-field model

Abstract

Liquid structures of thin-films and torus droplets are omnipresent in daily lives. The morphological evolution of liquid structures suspending in another immiscible fluid and sitting on a solid substrate is investigated by using three-dimensional (3D) phase-field (PF) simulations. Here, we address the evolution dynamics by scrutinizing the interplay of surface energy, kinetic energy, and viscous dissipation, which is characterized by Reynolds number Re and Weber number We. We observe special droplet breakup phenomena by varying Re and We. In addition, we gain the essential physical insights into controlling the droplet formation resulting from the morphological evolution of the liquid structures by characterizing the top and side profiles under different circumstances. We find that the shape evolution of the liquid structures is intimately related to the initial shape, Re, We as well as the intrinsic wettability of the substrate. Furthermore, it is revealed that the evolution dynamics are determined by the competition between the coalescence phenomenology and the hydrodynamic instability of the liquid structures. For the coalescence phenomenology, the liquid structure merges onto itself, while the hydrodynamic instability leads to the breakup of the liquid structure. Last but not least, we investigate the influence of wall relaxation on the breakup outcome of torus droplets on substrates with different contact angles. We shed light on how the key parameters including the initial shape, Re, We, wettability, and wall relaxation influence the droplet dynamics and droplet formation. These findings are anticipated to contribute insights into droplet-based systems, potentially impacting areas like ink-jet printing, drug delivery systems, and microfluidic devices, where the interplay of surface energy, kinetic energy, and viscous dissipation plays a crucial role.

Graphical abstract: Evolution dynamics of thin liquid structures investigated using a phase-field model

Supplementary files

Article information

Article type
Paper
Submitted
15 Nov 2023
Accepted
14 Jan 2024
First published
15 Jan 2024
This article is Open Access
Creative Commons BY license

Soft Matter, 2024,20, 1523-1542

Evolution dynamics of thin liquid structures investigated using a phase-field model

Y. Wu, F. Wang, S. Zheng and B. Nestler, Soft Matter, 2024, 20, 1523 DOI: 10.1039/D3SM01553J

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