Three dimensional simulations of viscous folding in diverging microchannels
Bingrui Xu, Jalel Chergui, Seungwon Shin, Damir Juric

TL;DR
This study uses advanced 3D simulations to analyze viscous folding in diverging microchannels, revealing how flow parameters influence folding behavior and axis orientation, providing insights into complex microfluidic flow instabilities.
Contribution
First 3D direct parallel numerical simulations of viscous thread folding in microchannels, exploring effects of flow parameters on folding dynamics and orientation.
Findings
Elliptical cross section of the thread influences folding axis.
Folding can transition from parallel to perpendicular orientation.
Simulation results qualitatively match early-stage experimental observations.
Abstract
Three dimensional simulations on the viscous folding in diverging microchannels reported by Cubaud and Mason are performed using the parallel code BLUE for multi-phase flows. The more viscous liquid L_1 is injected into the channel from the center inlet, and the less viscous liquid L_2 from two side inlets. Liquid L_1 takes the form of a thin filament due to hydrodynamic focusing in the long channel that leads to the diverging region. The thread then becomes unstable to a folding instability, due to the longitudinal compressive stress applied to it by the diverging flow of liquid L_2. Given the long computation time, we were limited to a parameter study comprising five simulations in which the flow rate ratio, the viscosity ratio, the Reynolds number, and the shape of the channel were varied relative to a reference model. In our simulations, the cross section of the thread produced by…
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Taxonomy
TopicsLattice Boltzmann Simulation Studies · Advanced Data Storage Technologies · Heat Transfer and Optimization
