On the spreading of impacting drops
arXiv:1602.03782 · doi:10.1017/jfm.2016.584
Abstract
The energy budget and dissipation mechanisms during droplet impact on solid surfaces are studied numerically and theoretically. We find that for high impact velocities and negligible surface friction at the solid surface (i.e. free-slip), about one half of the initial kinetic energy is transformed into surface energy, independent of the impact parameters and the detailed energy loss mechanism(s). We argue that this seemingly universal rule is related to the deformation mode of the droplet and is reminiscent of pipe flow undergoing a sudden expansion, for which the head loss can be calculated by multiplying the kinetic energy of the incoming flow by a geometrical factor. For impacts on a no-slip surface also dissipation in the shear boundary layer at the solid surface is important. In this case the geometric head loss acts as a lower bound on the total dissipation (i.e. the spreading on a no-slip surface approaches that on a free-slip surface when the droplet viscosity is send to zero). This new view on the impact problem allows for simple analytical estimates of the maximum spreading diameter of impacting drops as a function of the impact parameters and the properties of the solid surface. It bridges the gap between previous momentum balance approaches and energy balance approaches, which hitherto did not give consistent predictions in the low viscosity limit. Good agreement is found between our models and experiments, both for impacts on "slippery" or lubricated surfaces (e.g. Leidenfrost droplet impacts and head-on droplet-droplet collisions) and for impacts on no-slip surfaces.
Cited by in corpus (33)
- In-air microfluidics enables rapid fabrication of emulsions, suspensions, and 3D modular (bio)materials
- Impact forces of water drops falling on superhydrophobic surfaces
- Dynamics of drop impact on solid surfaces: evolution of impact force and self-similar spreading
- Spreading of a droplet impacting on a smooth flat surface: how liquid viscosity influences the maximum spreading time and spreading ratio
- Fast-freezing kinetics inside a droplet impacting on a cold surface
- Lifting a sessile oil drop from a superamphiphobic surface with an impacting one
- Stress distribution and surface shock wave of drop impact
- Bursting Bubble in a Viscoplastic Medium
- When does an impacting drop stop bouncing?
- Unifying theory of scaling in drop impact: Forces & maximum spreading diameter
- Droplet impact of Newtonian fluids and blood on simple fabrics: effect of fabric pore size and underlying substrate
- Universal aspects of droplet spreading dynamics in Newtonian and non-Newtonian Fluids
- Drop splashing is independent of substrate wetting
- Drop impact on viscous liquid films
- Liquid-grain mixing suppresses droplet spreading and splashing during impact
- Droplet impact on asymmetric hydrophobic microstructures
- Leidenfrost drop impact on inclined superheated substrates
- Droplet deformation by short laser-induced pressure pulses
- Droplet impact on surfaces with asymmetric microscopic features
- The role of viscosity on drop impact forces on non-wetting surfaces
- Capillary-scale solid rebounds: experiments, modelling and simulations
- Triple condensate halo from water droplets impacting on cold surfaces
- Spreading dynamics of droplets impacting on oscillating hydrophobic substrates
- Universality of stretching separation
- Miscibility and wettability: how interfacial tension influences droplet impact onto thin wall films
- Effects of viscosity on liquid structures produced by in-air microfluidics
- Influence of liquid miscibility and wettability on the structures produced by drop-jet collisions
- Droplet impact onto a spring-supported plate: analysis and simulations
- Deformation upon impact of a concentrated suspension drop
- Morphologies and dynamics of micro-droplet impact onto an idealised scratch
- Drop impact on superheated surfaces: from capillary dominance to non-linear advection dominance
- Interface Dynamics at a Four-fluid Interface during Droplet Impact on a Two-Fluid System
- Singular jets in compound drop impact