JOURNAL ARTICLE

Numerical Simulation of Droplet Impact on Patterned Surfaces

Abstract

Abstract In this work we present the numerical simulation results for the molten nickel and zirconia (YZS) droplets impact on different micro-scale patterned surfaces of silicon. The numerical simulation clearly showed the effect of surface roughness and the solidification on the shape of the final splat, as well as the pore creation beneath the material. The simulations were performed using a computational fluid dynamic software, Simulent Drop, The code uses a three-dimensional finite difference algorithm solving full Navier Stokes Equation with heat transfer and phase change. Volume of fluid (VOF) tracking algorithm is used to track the droplet free surface. Thermal contact resistance at the droplet– substrate interface is also included in the model. Specific attention is paid to the simulation of droplet impact under plasma spraying conditions. The droplet sizes ranged from 15 to 60 microns with the initial velocities of 70-250 m/s. The substrate surface was patterned by a regular array of cubes spaced at 1 µm and 5 µm from each other. The peak to valley height of each cube was between 1 to 3 µm. Different splat morphologies will be compared with those obtained from the experimental results under the same impact and surface conditions.

Keywords:
Volume of fluid method Materials science Drop impact Mechanics Surface roughness Computer simulation Substrate (aquarium) Finite volume method Heat transfer Silicon Surface finish Work (physics) Drop (telecommunication) Free surface Composite material Mechanical engineering Breakup Wetting Metallurgy Physics Engineering

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Citation History

Topics

Fluid Dynamics and Heat Transfer
Physical Sciences →  Engineering →  Computational Mechanics
Surface Modification and Superhydrophobicity
Physical Sciences →  Materials Science →  Surfaces, Coatings and Films
Particle Dynamics in Fluid Flows
Physical Sciences →  Engineering →  Ocean Engineering

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