A numerical approach for the direct computation of flows including fluid-solid interaction: modeling contact angle, film rupture, and dewetting
arXiv:1509.07592 · doi:10.1063/1.4949522
Abstract
In this paper, we present a computationally efficient method for including fluid-solid interactions into direct numerical simulations of the Navier-Stokes equations. This method is found to be as powerful as our earlier formulation [J. Comp. Phys., vol. 249: 243 (2015)], while outperforming the earlier method in terms of computational efficiency. The performance and efficacy of the presented method are demonstrated by computing contact angles of droplets at equilibrium. Furthermore, we study the instability of films due to destabilizing fluid-solid interactions, and discuss the influence of contact angle and inertial effects on film breakup. In particular, direct simulation results show an increase in the final characteristic length scales when compared to the predictions of a linear stability analysis, suggesting significant influence of nonlinear effects. Our results also show that emerging length scales differ, depending on a number of physical dimensions considered.
Submitted to: Physics of Fluids
References in corpus (2)
Cited by in corpus (5)
- Gradient dynamics model for drops spreading on polymer brushes
- Influence of thermal effects on stability of nanoscale films and filaments on thermally conductive substrates
- Equilibrium Contact Angle at the Wetted Substrate
- Prediction of Self-Assembled Dewetted Nanostructures for Photonics Applications via a Continuum Mechanics Framework
- Liquid film rupture beyond the thin-film equation: a multi-component lattice Boltzmann study