Desalination : discharging brine into coastal waters (square 30 degree angle)

The vortices in a square nozzle encourage more entrainment than round nozzle in principle, and thus should increase mixing. This is due to the characteristic of the vortices created by the nozzle geometry. In this study, Combined Particle Image Velocimetry (PIV) and Planar Laser Induced Fluoresce...

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Bibliographic Details
Main Author: Lim, Zhong Yi.
Other Authors: Law Wing-Keung, Adrian
Format: Final Year Project (FYP)
Language:English
Published: 2009
Subjects:
Online Access:http://hdl.handle.net/10356/15799
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author Lim, Zhong Yi.
author2 Law Wing-Keung, Adrian
author_facet Law Wing-Keung, Adrian
Lim, Zhong Yi.
author_sort Lim, Zhong Yi.
collection NTU
description The vortices in a square nozzle encourage more entrainment than round nozzle in principle, and thus should increase mixing. This is due to the characteristic of the vortices created by the nozzle geometry. In this study, Combined Particle Image Velocimetry (PIV) and Planar Laser Induced Fluorescence (PLIF) were used to quantify the velocity and concentration fields of an inclined square 30° dense jet concurrently, and compared with the existing data of an inclined round 30° dense jet. All parameters were kept similar between the two conditions. Several important parameters, for instance, the maximum centreline height, its corresponding horizontal distance, the horizontal distance of the impact point and minimum dilution along the centreline trajectory, were investigated together with the velocity and concentration profiles. The results showed that the square jet has a lower dilution at centreline peak and a higher dilution at the return point due to a longer potential core region of 8D compared to 3D. A square jet also delivers a higher elevation of centreline peak at a similar horizontal distance compared to a round jet.
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spelling ntu-10356/157992023-03-03T16:56:29Z Desalination : discharging brine into coastal waters (square 30 degree angle) Lim, Zhong Yi. Law Wing-Keung, Adrian School of Civil and Environmental Engineering DRNTU::Engineering::Civil engineering::Water resources The vortices in a square nozzle encourage more entrainment than round nozzle in principle, and thus should increase mixing. This is due to the characteristic of the vortices created by the nozzle geometry. In this study, Combined Particle Image Velocimetry (PIV) and Planar Laser Induced Fluorescence (PLIF) were used to quantify the velocity and concentration fields of an inclined square 30° dense jet concurrently, and compared with the existing data of an inclined round 30° dense jet. All parameters were kept similar between the two conditions. Several important parameters, for instance, the maximum centreline height, its corresponding horizontal distance, the horizontal distance of the impact point and minimum dilution along the centreline trajectory, were investigated together with the velocity and concentration profiles. The results showed that the square jet has a lower dilution at centreline peak and a higher dilution at the return point due to a longer potential core region of 8D compared to 3D. A square jet also delivers a higher elevation of centreline peak at a similar horizontal distance compared to a round jet. Bachelor of Engineering 2009-05-15T06:57:08Z 2009-05-15T06:57:08Z 2009 2009 Final Year Project (FYP) http://hdl.handle.net/10356/15799 en Nanyang Technological University 57 p. application/pdf
spellingShingle DRNTU::Engineering::Civil engineering::Water resources
Lim, Zhong Yi.
Desalination : discharging brine into coastal waters (square 30 degree angle)
title Desalination : discharging brine into coastal waters (square 30 degree angle)
title_full Desalination : discharging brine into coastal waters (square 30 degree angle)
title_fullStr Desalination : discharging brine into coastal waters (square 30 degree angle)
title_full_unstemmed Desalination : discharging brine into coastal waters (square 30 degree angle)
title_short Desalination : discharging brine into coastal waters (square 30 degree angle)
title_sort desalination discharging brine into coastal waters square 30 degree angle
topic DRNTU::Engineering::Civil engineering::Water resources
url http://hdl.handle.net/10356/15799
work_keys_str_mv AT limzhongyi desalinationdischargingbrineintocoastalwaterssquare30degreeangle