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Dynamics of droplet formation with oscillation of meniscus in electric periodic dripping regime

journal contribution
posted on 2024-11-02, 15:00 authored by Zhentao Wang, Yaosheng Zhang, Qisi Wang, Kai Dong, Shiqi Yang, Yimin Jiang, Bin Li, Yuanping Huo, Xiaoying Wang, Junfeng Wang, Jiyuan TuJiyuan Tu
The dynamics of droplets and oscillation of electrified meniscus at low flow rates in an external electric field were investigated. An electric field is created by nozzle-plated electrode. The evolution of droplet formation is recorded by a high-speed digital camera. Meanwhile, the time evolution of meniscus is also focused. The critical sizes of the droplet and liquid thread were used to characterize the dynamics of droplet formation and oscillation of the meniscus. The results showed that a droplet gradually originates from a hemispherical meniscus and changes from spherical to pear-shaped. A liquid thread connects the meniscus and primary droplet, and pinches off as time advances. The droplets diameter decreases as electric potential increasing and is dependent of capillary diameter, while usually independent of flow rates. The droplet limiting length decreases, while the liquid thread diameter increases as electric Bond number increasing. The period of detachment decreases with an increase in electric potential and strongly depends on flow rate. The meniscus usually oscillates when the primary droplet detaches. The oscillation frequency increases as electric field strength increasing and is substantially affected by flow rate. An approximate equation to predict the oscillation frequency was presented, where the electric potential was taken into account. The variation of the oscillation frequency is qualitatively good agreement with experimental work. The amplitude of oscillation (or displacement) is significantly affected by electric field and increases as electric Bond number increasing.

History

Journal

Experimental Thermal and Fluid Science: international journal of experimental heat transfer, thermodynamics, and fluid mechanics

Volume

120

Number

110250

Start page

1

End page

11

Total pages

11

Publisher

Elsevier Inc.

Place published

United States

Language

English

Copyright

© 2020 Elsevier Inc. All rights reserved.

Former Identifier

2006104069

Esploro creation date

2021-04-21

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