Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements

Over the last 30 years, Particle Image Velocimetry (PIV) has become the most powerful tool to study velocity fields in fluid mechanics. This technique is non-intrusive requiring seeding the flow with small tracer particles. The hardware required for these sophisticated PIV methods is very expensive...

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Main Author: Aguirre-Pablo, Andres A.
Other Authors: Thoroddsen, Sigurdur T
Language:en
Published: 2018
Subjects:
PSV
Online Access:http://hdl.handle.net/10754/630117
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spelling ndltd-kaust.edu.sa-oai-repository.kaust.edu.sa-10754-6301172020-08-25T05:07:15Z Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements Aguirre-Pablo, Andres A. Thoroddsen, Sigurdur T Physical Science and Engineering (PSE) Division Farooq, Aamir Heidrich, Wolfgang Castrejon-Pita, Alfonso Tomographic-PIV Flow Measurements 3D-PTV PSV Over the last 30 years, Particle Image Velocimetry (PIV) has become the most powerful tool to study velocity fields in fluid mechanics. This technique is non-intrusive requiring seeding the flow with small tracer particles. The hardware required for these sophisticated PIV methods is very expensive (CCD or CMOS high-speed cameras and lasers), and the present dissertation aims to develop novel and inexpensive alternatives. The first part of this work investigates the use of multiple smartphones as a lower-cost Tomographic-PIV system for reconstructing 3D-3C velocity fields. We use colored shadows to imprint two or three different time-steps on the same image in a RGB-backlit configuration. We use commercially available Tomo-PIV software for the calibration, 3-D particle reconstruction, and particle-field correlations, to obtain three velocity components in a volume. The proposed system is tested with a vortex ring and the results are compared to stereoscopic-PIV for error estimations. We expand this work to a high-speed time-resolved setup to obtain 3D-3C velocity fields in time. This improvement is possible using newer smartphones capable of recording high-speed video at HD resolution. The challenges of using such cameras are presented and tackled. The illumination system, testing flow and image processing is similar to the one presented in the first section. A benchmark of the smartphone system is carried out comparing it to a Tomo-PIV system capable of recording 4K video resolution. A different approach is proposed to reconstruct a 3D-3C velocity field using a single color video camera. This technique uses chromatic structured light with color-gradients projected perpendicularly with respect to the color camera. Thus, we encode the depth position of the particles with a different wavelength of light. Different light sources are used to produce such color gradients. Finally, a variation of the previous technique is tested using a single monochromatic camera and structured volumetric illumination with spatially varying intensity profiles. This technique enables us to encode the depth position of every particle in their intrinsic brightness. The proposed system can achieve a depth resolution of 200 levels, i.e., an order of magnitude higher than previously proposed systems. 2018-12-03T07:19:16Z 2019-12-03T00:00:00Z 2018-10 Dissertation 10.25781/KAUST-5A171 http://hdl.handle.net/10754/630117 en 2019-12-03 At the time of archiving, the student author of this dissertation opted to temporarily restrict access to it. The full text of this dissertation became available to the public after the expiration of the embargo on 2019-12-03.
collection NDLTD
language en
sources NDLTD
topic Tomographic-PIV
Flow Measurements
3D-PTV
PSV
spellingShingle Tomographic-PIV
Flow Measurements
3D-PTV
PSV
Aguirre-Pablo, Andres A.
Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements
description Over the last 30 years, Particle Image Velocimetry (PIV) has become the most powerful tool to study velocity fields in fluid mechanics. This technique is non-intrusive requiring seeding the flow with small tracer particles. The hardware required for these sophisticated PIV methods is very expensive (CCD or CMOS high-speed cameras and lasers), and the present dissertation aims to develop novel and inexpensive alternatives. The first part of this work investigates the use of multiple smartphones as a lower-cost Tomographic-PIV system for reconstructing 3D-3C velocity fields. We use colored shadows to imprint two or three different time-steps on the same image in a RGB-backlit configuration. We use commercially available Tomo-PIV software for the calibration, 3-D particle reconstruction, and particle-field correlations, to obtain three velocity components in a volume. The proposed system is tested with a vortex ring and the results are compared to stereoscopic-PIV for error estimations. We expand this work to a high-speed time-resolved setup to obtain 3D-3C velocity fields in time. This improvement is possible using newer smartphones capable of recording high-speed video at HD resolution. The challenges of using such cameras are presented and tackled. The illumination system, testing flow and image processing is similar to the one presented in the first section. A benchmark of the smartphone system is carried out comparing it to a Tomo-PIV system capable of recording 4K video resolution. A different approach is proposed to reconstruct a 3D-3C velocity field using a single color video camera. This technique uses chromatic structured light with color-gradients projected perpendicularly with respect to the color camera. Thus, we encode the depth position of the particles with a different wavelength of light. Different light sources are used to produce such color gradients. Finally, a variation of the previous technique is tested using a single monochromatic camera and structured volumetric illumination with spatially varying intensity profiles. This technique enables us to encode the depth position of every particle in their intrinsic brightness. The proposed system can achieve a depth resolution of 200 levels, i.e., an order of magnitude higher than previously proposed systems.
author2 Thoroddsen, Sigurdur T
author_facet Thoroddsen, Sigurdur T
Aguirre-Pablo, Andres A.
author Aguirre-Pablo, Andres A.
author_sort Aguirre-Pablo, Andres A.
title Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements
title_short Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements
title_full Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements
title_fullStr Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements
title_full_unstemmed Novel and Inexpensive Three-dimensional Velocimetry Techniques for Flows Visualization and Measurements
title_sort novel and inexpensive three-dimensional velocimetry techniques for flows visualization and measurements
publishDate 2018
url http://hdl.handle.net/10754/630117
work_keys_str_mv AT aguirrepabloandresa novelandinexpensivethreedimensionalvelocimetrytechniquesforflowsvisualizationandmeasurements
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