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Bubble Entrapment During the Recoil of an Impacting Droplet

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Date 2021 Sep 27
PMID 34567650
Citations 2
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Abstract

When a droplet impacts a (super-)hydrophobic surface, there is a range of Weber numbers within which bubble entrapment will occur during droplet recoil due to closure of the air cavity developed when the droplet spreads out during the impact. In this study, we studied bubble entrapment using a microelectromechanical system (MEMS)-based acoustic sensor fabricated on a substrate. We found that bubble entrapment is followed by an acoustic vibration that can be detected by the sensor. Moreover, the frequency of the vibration is inversely proportional to the radius of the droplet, which indicates that this vibration is the resonant oscillation of the bubble. Therefore, the MEMS-based acoustic sensor can be used not only to detect but also to measure the size of the entrapped bubble. Finally, we demonstrated that it is possible to prevent bubble formation by allowing the air to escape to the underside of the droplet contact area. This can be done by creating through-holes on the substrate or decorating the substrate with sufficiently large textures.

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References
1.
Bouwhuis W, van der Veen R, Tran T, Keij D, Winkels K, Peters I . Maximal air bubble entrainment at liquid-drop impact. Phys Rev Lett. 2013; 109(26):264501. DOI: 10.1103/PhysRevLett.109.264501. View

2.
Nguyen T, Nguyen M, Takahashi H, Matsumoto K, Shimoyama I . Viscosity measurement based on the tapping-induced free vibration of sessile droplets using MEMS-based piezoresistive cantilevers. Lab Chip. 2015; 15(18):3670-6. DOI: 10.1039/c5lc00661a. View

3.
Chen L, Bonaccurso E, Deng P, Zhang H . Droplet impact on soft viscoelastic surfaces. Phys Rev E. 2017; 94(6-1):063117. DOI: 10.1103/PhysRevE.94.063117. View

4.
Klaseboer E, Manica R, Chan D . Universal behavior of the initial stage of drop impact. Phys Rev Lett. 2014; 113(19):194501. DOI: 10.1103/PhysRevLett.113.194501. View

5.
Chen L, Li Z . Bouncing droplets on nonsuperhydrophobic surfaces. Phys Rev E Stat Nonlin Soft Matter Phys. 2010; 82(1 Pt 2):016308. DOI: 10.1103/PhysRevE.82.016308. View