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Published on: March 5, 2014
Hydrodynamics of immiscible binary fluids with viscosity contrast: a multiparticle collision dynamics approach
Zihan Tan1, Vania Calandrini, Jan K G Dhont
1Biomacromolecular Systems and Processes, Institute of Biological Information Processing, Forschungszentrum Jülich, 52428 Jülich, Germany. z.tan@fz-juelich.de.
We developed a multiparticle collision dynamics (MPC) model for layered immiscible fluids. This efficient model accurately simulates fluid flow and colloidal sphere mobility near interfaces, validating continuum hydrodynamics.
Area of Science:
- Computational physics
- Fluid dynamics
- Soft matter physics
Background:
- Understanding fluid dynamics at interfaces is crucial for various applications.
- Continuum hydrodynamics provides a macroscopic view but lacks microscopic detail.
- Multiparticle collision dynamics (MPC) offers a mesoscopic approach to simulate complex fluids.
Purpose of the Study:
- To implement and validate a multiparticle collision dynamics (MPC) model for layered immiscible fluids with different shear viscosities.
- To compare MPC simulations of fluid flow and shear stress with continuum hydrodynamics predictions.
- To investigate the hydrodynamic mobility of colloidal spheres near fluid-fluid interfaces using the MPC model.
Main Methods:
- Implementation of a multiparticle collision dynamics (MPC) model for two immiscible fluid layers (A and B) with distinct shear viscosities.
- Simulation of steady shear flow and analysis of time-dependent shear stress functions.
- Calculation of wave-vector dependent transverse velocity auto-correlation functions (TVAF) in bulk fluid regions.
- Determination of hydrodynamic mobilities for a colloidal sphere moving parallel and transverse to the fluid-fluid interface at varying distances.
Main Results:
- MPC simulations of flow profiles and shear stress functions showed excellent agreement with continuum hydrodynamics results.
- Exponential decay of TVAF in bulk fluid regions matched predictions for single-phase MPC fluids.
- Hydrodynamic mobilities of colloidal spheres near the interface agreed well with hydrodynamic force multipoles calculations for creeping flow.
- The MPC model demonstrated straightforward implementation and computational efficiency.
Conclusions:
- The developed MPC fluid-layer model is a computationally efficient and accurate tool for simulating immiscible fluid interfaces.
- The model successfully reproduces key hydrodynamic behaviors, including flow profiles, shear stress, and colloidal mobility.
- While effective, the spatial discretization of MPC limits the reproduction of all features of an ideally flat interface.
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