Effective slip over partially filled microcavities and its possible failure
Abstract
Motivated by the emerging applications of liquid-infused surfaces (LIS), we study the drag reduction and robustness of transverse flows over two-dimensional microcavities partially filled with an oily lubricant. Using separate simulations at different scales, characteristic contact line velocities at the fluid-solid intersection are first extracted from nano-scale phase field simulations and then applied to micron-scale two-phase flows, thus introducing a multiscale numerical framework to model the interface displacement and deformation within the cavities. As we explore the various effects of the lubricant-to-outer-fluid viscosity ratio , the capillary number Ca, the static contact angle , and the filling fraction of the cavity , we find that the effective slip is most sensitive to the parameter . The effects of and are generally intertwined, but weakened if . Moreover, for an initial filling fraction , our results show that the effective slip is nearly independent of the capillary number, when it is small. Further increasing Ca to about , we identify a possible failure mode, associated with lubricants draining from the LIS, for . Very viscous lubricants (\eg ), on the other hand, are immune to such failure due to their generally larger contact line velocity.
Cite
@article{arxiv.1805.02381,
title = {Effective slip over partially filled microcavities and its possible failure},
author = {Zhouyang Ge and Hanna Holmgren and Martin Kronbichler and Luca Brandt and Gunilla Kreiss},
journal= {arXiv preprint arXiv:1805.02381},
year = {2018}
}
Comments
Phys. Rev. Fluids (2018)