Newtonian fluid dynamics in a misaligned parallel-plate rheometer
Jian Teng (1), Sungwon La (1), Jesse T. Ault (1) ((1) Brown, University)

TL;DR
This paper develops a theoretical model and numerical validation to understand how misalignment in a parallel-plate rheometer affects viscosity measurements of Newtonian fluids, especially at small gap heights.
Contribution
It introduces a perturbation-based theoretical model for Newtonian fluid flow in misaligned rheometers and validates it with numerical simulations, highlighting the impact on viscosity measurements.
Findings
Misalignment causes secondary flows and pressure effects.
Viscosity is underestimated more with larger tilt angles.
Theoretical predictions are confirmed by numerical simulations.
Abstract
A parallel-plate rotational rheometer measures the viscosity of a fluid by rotating the top plate relative to the bottom plate in order to induce a shear on the fluid and measuring the torques and forces that result as a function of the induced rotation rate. Manufacturing imperfections can often lead to unintentional misalignment of the plates of the rheometer, where the top and bottom plates are not perfectly parallel, and this misalignment can affect the fluid dynamics inside the rheometer. This study examines the effect that misalignment has on the viscosity measurements of Newtonian fluids in the limit of small rheometer gap heights. A theoretical model for the behavior of a general Newtonian fluid in a misaligned rheometer with a small gap height is derived using perturbation expansions. The theoretical results show that at small gap heights, misalignment can produce additional…
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Taxonomy
TopicsRheology and Fluid Dynamics Studies · Surfactants and Colloidal Systems · Fluid Dynamics and Vibration Analysis
