Hybrid Lattice Boltzmann/Finite Difference simulations of viscoelastic multicomponent flows in confined geometries
arXiv:1406.2686 · doi:10.1016/j.jcp.2015.03.006
Abstract
We propose numerical simulations of viscoelastic fluids based on a hybrid algorithm combining Lattice-Boltzmann models (LBM) and Finite Differences (FD) schemes, the former used to model the macroscopic hydrodynamic equations, and the latter used to model the polymer dynamics. The kinetics of the polymers is introduced using constitutive equations for viscoelastic fluids with finitely extensible non-linear elastic dumbbells with Peterlin's closure (FENE-P). The numerical model is first benchmarked by characterizing the rheological behaviour of dilute homogeneous solutions in various configurations, including steady shear, elongational flows, transient shear and oscillatory flows. As an upgrade of complexity, we study the model in presence of non-ideal multicomponent interfaces, where immiscibility is introduced in the LBM description using the "Shan-Chen" model. The problem of a confined viscoelastic (Newtonian) droplet in a Newtonian (viscoelastic) matrix under simple shear is investigated and numerical results are compared with the predictions of various theoretical models. The proposed numerical simulations explore problems where the capabilities of LBM were never quantified before.
32 Pages, 11 Figures
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- Effects of viscoelasticity on droplet dynamics and break-up in microfluidic T-Junctions: a lattice Boltzmann study
- Multicomponent Flow on Curved Surfaces: A Vielbein Lattice Boltzmann Approach
- Cross-stream migration of a Brownian droplet in a polymer solution under Poiseuille flow
- Lattice Boltzmann simulations of droplet breakup in confined and time-dependent flows
- Role of interfacial stabilization in the Rayleigh-Bénard convection of liquid-liquid dispersions
- Two-fluid kinetic theory for dilute polymer solutions