Dynamics of an elastoviscoplastic droplet in a Newtonian medium under shear flow
Daulet Izbassarov, Outi Tammisola

TL;DR
This study uses 3D simulations to explore how elastoviscoplastic droplets behave under shear flow, revealing complex dependencies on multiple parameters and challenging previous assumptions about viscoelastic effects.
Contribution
It introduces a comprehensive numerical analysis of elastoviscoplastic droplet dynamics, highlighting the influence of multiple parameters and developing a new regime map.
Findings
Unyielded region volume increases with Bingham and Weissenberg numbers.
Droplet deformation depends nonmonotonically on Weissenberg number at low Bingham number.
Deformation increases with capillary number and viscosity ratio.
Abstract
The dynamics of a single elastoviscoplastic (EVP) drop immersed in plane shear flow of a Newtonian fluid is studied by 3D direct numerical simulations using a finite-difference and level-set method combined with the Saramito model for the EVP fluid. This model gives rise to a yield stress behavior, where the unyielded state of the material is described as a Kelvin-Voigt viscoelastic solid and the yielded state as a viscoelastic Oldroyd-B fluid. Yielding of an initially solid drop of Carbopol is simulated under successively increasing shear rates. We proceed to examine the roles of nondimensional parameters on the yielding process; in particular, the Bingham number (), capillary number (), Weissenberg number (), and ratio of solvent and total drop viscosity. We find that all of these parameters, and not only , have a significant influence on the drop dynamics. Numerical…
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Taxonomy
TopicsRheology and Fluid Dynamics Studies · Innovative Microfluidic and Catalytic Techniques Innovation · Fluid Dynamics and Heat Transfer
