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Bouncing Dynamics of a Nanodroplet Impacting a Superhydrophobic Surface under Perpendicular Electric Fields

Colloids and surfaces A, Physicochemical and engineering aspects(2021)

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Abstract
The bouncing dynamics of a nanodroplet impacting a superhydrophobic surface under a perpendicular electric field is studied through molecular dynamics (MD) simulations. Using the electric field strength as a parameter, two bouncing regimes are identified: an inertial force rebounding (IFR) regime (E < 0.08 V Å−1) and an electric field force rebounding (EFFR) regime (E > 0.08 V Å−1). In the IFR regime, the restitution coefficient, εb, is the same as but the contact time, τc, is shorter than that without an electric field. In the EFFR regime, εb is proportional to the electric field strength, whereas τc decreases with an increase in the electric field strength. On the boundary separating the two regimes (around 0.08 V Å−1), both εb and τc increase sharply due to the droplet deformation. The droplet bounces off the surface in the shape of a sphere in the IFR regime and as a long strip in the EFFR regime. A new criterion for the bouncing of nanodroplets subjected to a perpendicular electric field is proposed based on the restitution coefficient, Weber number, characteristic length, and factor Φ. The criterion demonstrates that imposing an electric field can help the bouncing of nanodroplets.
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Key words
Molecular dynamics,LAMMPS,Droplet impact,Electric field,Restitution coefficient,Contact time
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