Orientational dynamics of anisotropic colloidal particles in a planar extensional flow
Dinesh Kumar

TL;DR
This paper develops a theoretical framework to predict the orientation dynamics of anisotropic colloidal particles in planar extensional flow, addressing experimental challenges and comparing results with recent experimental data.
Contribution
It introduces an analytical solution to the Fokker-Planck equation for anisotropic particles in extensional flow, enhancing understanding of their microstructure in complex flow conditions.
Findings
Reasonable agreement between theory and experiments
Analytical solutions for steady orientation distributions
Discussion on challenges of transient dynamics modeling
Abstract
Suspensions of anisotropic particles are commonly encountered in a wide spectrum of applications, including industrial and architectural coatings, targeted drug delivery and manufacturing of fiber-reinforced composites. A grand challenge in the field of chemical and material processing is robust production of strongly aligned fibers at the microscopic level, as this is routinely linked with enhanced mechanical properties at the macroscopic level. While the investigation of the microstructure of anisotropic colloids in shear flows has garnered a lot of theoretical and experimental attention, the case of extensional flow remains poorly understood due to several experimental challenges. In this article, we present a theoretical framework for predicting the steady and transient orientations of anisotropic particles in a flowing liquid undergoing precisely defined steady and time-dependent…
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Taxonomy
TopicsPlant Surface Properties and Treatments · Rheology and Fluid Dynamics Studies · Microfluidic and Bio-sensing Technologies
