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Visually Based Characterization of the Incipient Particle Motion in Regular Substrates: From Laminar to Turbulent Conditions
Published on: February 22, 2018
Modeling of contact angle hysteresis for rigid mobile particles: A phase-field lattice Boltzmann approach
Malyadeep Bhattacharya1, Jovina Vaswani2, Sachin S Velankar2,3
1Indian Institute of Technology Bombay, Department of Chemical Engineering, Maharashtra 400076, India.
Abstract:
We introduce a scheme for contact angle hysteresis in the presence of moving curved solid boundaries for a class of two-phase fluid models, where the interface between fluid phases is diffuse, while the ones involving solid phases are sharp. The scheme essentially reconstructs a ghost-node phase-field profile based on an Allen-Cahn equation along the solid surface. After validating the combined phase-field lattice Boltzmann approach with benchmarks in constant contact angle mode, we systematically investigate the hysteresis behavior with three benchmarks: (1) a cylinder rotating at a fluid-fluid interface, (2) a capillary bridge between two parallel plates that is stretched by separating the plates at a constant velocity, and (3) a cylinder equilibrating in a liquid pool under gravity. In all cases, contact line pinning is reproduced accurately, including the transition between the pinned and depinned states. The force and torque measured on the solid surface agree well with analytical solutions.
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