Flow in channels with superhydrophobic trapezoidal textures
arXiv:1307.2333 · doi:10.1039/C3SM51850G
Abstract
Superhydrophobic one-dimensional surfaces reduce drag and generate transverse hydrodynamic phenomena by combining hydrophobicity and roughness to trap gas bubbles in microscopic textures. Recent works in this area have focused on specific cases of superhydrophobic stripes. Here we provide some theoretical results to guide the optimization of the forward flow and transverse hydrodynamic phenomena in a parallel-plate channel with a superhydrophobic trapezoidal texture, varying on scales larger than the channel thickness. The permeability of such a thin channel is shown to be equivalent to that of a striped one with greater average slip. The maximization of a transverse flow normally requires largest possible slip at the gas areas, similarly to a striped channel. However, in case of trapezoidal textures with a very small fraction of the solid phase this maximum occurs at a finite slip at the gas areas. Exact numerical calculations show that our analysis, based on a lubrication theory, can also be applied for a larger gap. However, in this case it overestimates a permeability of the channel, and underestimates an anisotropy of the flow. Our results provide a framework for the rational design of superhydrophobic surfaces for microfluidic applications.
9 pages, 7 figures
References in corpus (14)
- Slippage of water past superhydrophobic carbon nanotube forests in microchannels
- A note on the effective slip properties for microchannel flows with ultra-hydrophobic surfaces
- Slip flow over structured surfaces with entrapped microbubbles
- Effective slip over superhydrophobic surfaces in thin channels
- Wetting, roughness and flow boundary conditions
- Direct measurements of hydrophobic slippage using double-focus fluorescence cross-correlation
- Electro-osmosis on anisotropic super-hydrophobic surfaces
- Tensorial slip of super-hydrophobic channels
- Capillary bridging and long-range attractive forces in a mean-field approach
- Effective slip boundary conditions for arbitrary one-dimensional surfaces
- Transverse flow in thin superhydrophobic channels
- Drag force on a sphere moving towards an anisotropic super-hydrophobic plane
- Effective slip-length tensor for a flow over weakly slipping stripes
- Hydrodynamic interaction with super-hydrophobic surfaces
Cited by in corpus (7)
- 'Gas cushion' model and hydrodynamic boundary conditions for superhydrophobic textures
- Inertial migration of neutrally-buoyant particles in superhydrophobic channels
- Flows and mixing in channels with misaligned superhydrophobic walls
- Flow-driven collapse of lubricant-infused surfaces
- Boundary conditions at the gas sectors of superhydrophobic grooves
- Effective slippage on superhydrophobic trapezoidal grooves
- Advective superdiffusion in superhydrophobic microchannels