arXiv · 1611.04991
Local dissipation limits the dynamics of impacting droplets on smooth and rough substrates
Abstract
A droplet that impacts onto a solid substrate deforms in a complex dynamics. To extract the principal mechanisms that dominate this dynamics we deploy numerical simulations based on the phase field method. Direct comparison with experiments suggests that a dissipation local to the contact line limits the droplet spreading dynamics and its scaled maximum spreading radius $β_\mathrm{max}$. By assuming linear response through a drag force at the contact line, our simulations rationalize experimental observations for droplet impact on both smooth and rough substrates, measured through a single contact line friction parameter $μ_f$. Moreover, our analysis shows that at low and intermediate impact speeds dissipation at the contact line limits the dynamics and we describe $β_\mathrm{max}$ by the scaling law $β_\mathrm{max} \sim (Re μ_\mathrm{l}/μ_f)^{1/2}$ that is a function of the droplet viscosity ($μ_\mathrm{l}$) and its Reynolds number ($Re$).
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Yuli Wang, Gustav Amberg, Andreas Carlson. 2016-11-15. Local dissipation limits the dynamics of impacting droplets on smooth and rough substrates. https://doi.org/10.1103/physrevfluids.2.033602
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