Physics of Fluids · 2018 · 93 citations · 36 references
ElectrohydrodynamicsEngineeringFluid MechanicsMicrorheologyFluid EngineeringBiomedical EngineeringNumerical HydrodynamicsPhan-thien–tanner FluidsTheoretical ElectrochemistryElectroosmotic FlowWall Zeta PotentialChemical EngineeringFluid PropertiesRheologyTransport PhenomenaViscoelastic FluidMicrofluidicsBiofluid DynamicBiophysicsFlow PhysicHydromechanicsParallel Plate MicrochannelElectrochemistryRheological Constitutive EquationHydrodynamicsApplied PhysicsFundamental ElectrochemistryHigh Zeta Potentials
The study develops a mathematical model for electroosmotic flow of a viscoelastic fluid in a parallel‑plate microchannel at high zeta potential, incorporating wall slip. The model uses simplified Phan‑Thien–Tanner rheology with Navier slip and solves the full Poisson–Boltzmann equation analytically for potential, velocity, and flow rate. The analysis shows that higher wall zeta potential and slip coefficient, together with viscoelasticity, dramatically increase volumetric flow rate and affect velocity, stress, and apparent viscosity, offering a design tool for microfluidic devices.
We present a mathematical model to study the electroosmotic flow of a viscoelastic fluid in a parallel plate microchannel with a high zeta potential, taking hydrodynamic slippage at the walls into account in the underlying analysis. We use the simplified Phan-Thien–Tanner (s-PTT) constitutive relationships to describe the rheological behavior of the viscoelastic fluid, while Navier’s slip law is employed to model the interfacial hydrodynamic slip. Here, we derive analytical solutions for the potential distribution, flow velocity, and volumetric flow rate based on the complete Poisson–Boltzmann equation (without considering the frequently used Debye–Hückel linear approximation). For the underlying electrokinetic transport, this investigation primarily reveals the influence of fluid rheology, wall zeta potential as modulated by the interfacial electrochemistry and interfacial slip on the velocity distribution, volumetric flow rate, and fluid stress, as well as the apparent viscosity. We show that combined with the viscoelasticity of the fluid, a higher wall zeta potential and slip coefficient lead to a phenomenal enhancement in the volumetric flow rate. We believe that this analysis, besides providing a deep theoretical insight to interpret the transport process, will also serve as a fundamental design tool for microfluidic devices/systems under electrokinetic influence.
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Slip on Superhydrophobic Surfaces
Jonathan P. Rothstein · Annual Review of Fluid Mechanics · 2010 · 1.2K citations
Apparent fluid slip at hydrophobic microchannel walls
Derek C. Tretheway, Carl Meinhart · Physics of Fluids · 2002 · 982 citations