Simultaneous Ultrasound Imaging Velocimetry (UIV) and Flow Visualization in Taylor-Couette flows

Validation of UIV in single-phase flows

Conference Paper (2019)
Author(s)

A. Dash (TU Delft - Multi Phase Systems)

Arjun Anantharaman (Student TU Delft)

Arnoud J. Greidanus (TU Delft - Fluid Mechanics)

C. Poelma (TU Delft - Multi Phase Systems)

Research Group
Multi Phase Systems
Copyright
© 2019 A. Dash, Arjun Anantharaman, A.J. Greidanus, C. Poelma
DOI related publication
https://doi.org/10.18726/2019_3
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 A. Dash, Arjun Anantharaman, A.J. Greidanus, C. Poelma
Related content
Research Group
Multi Phase Systems
Pages (from-to)
980-989
ISBN (electronic)
978-3-943207-39-2
Reuse Rights

Other than for strictly personal use, it is not permitted to download, forward or distribute the text or part of it, without the consent of the author(s) and/or copyright holder(s), unless the work is under an open content license such as Creative Commons.

Abstract

Ultrasound Imaging Velocimetry (UIV) is applied to a Taylor-Couette flow, for the case of pure inner cylinder rotation. By imaging a radial-azimuthal plane, two velocity components are obtained simultaneously in a two-dimensional plane. For the single-phase flow studies, Iriodin flakes (commonly used for visualizing flow structures) are used as “flow tracers” for the backscatter of ultrasound. This allows for a simultaneous mapping of the flow regime, via flow visualization, as well as extracting quantitative velocity information in the radial gap. After validating UIV against the analytically well-defined laminar Circular Couette flow as well as turbulent Taylor-Couette flow, other regimes are probed as well, in particular, the Wavy Vortex flow. Finally, the application of UIV to a particle-laden Taylor-Couette flow (particle volume fraction, f_0:01) is considered, under the conditions of oscillatory pure inner cylinder rotation. The results presented here serve as a proof-of-concept for the application of UIV to the Taylor-Couette flow and will be applied to denser particle-laden flows (f _ 0:05) in the future.

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