Wave driven devices for the oxygenation of bottom layers

This thesis discusses the design of a system to use wave energy to pump oxygen-rich surface water towards the bottom of the sea. A simple device, called OXYFLUX, is proposed in a scale model and tested in a wave flume in order to validate its supposed theoretical functioning. Once its effectivene...

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Bibliographic Details
Main Author: Antonini, Alessandro <1985>
Other Authors: Lamberti, Alberto
Format: Doctoral Thesis
Language:en
Published: Alma Mater Studiorum - Università di Bologna 2014
Subjects:
Online Access:http://amsdottorato.unibo.it/6620/
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spelling ndltd-unibo.it-oai-amsdottorato.cib.unibo.it-66202014-07-16T05:02:35Z Wave driven devices for the oxygenation of bottom layers Antonini, Alessandro <1985> ICAR/01 Idraulica This thesis discusses the design of a system to use wave energy to pump oxygen-rich surface water towards the bottom of the sea. A simple device, called OXYFLUX, is proposed in a scale model and tested in a wave flume in order to validate its supposed theoretical functioning. Once its effectiveness has been demonstrated, a overset mesh, CFD model has been developed and validated by means of the physical model results. Both numerical and physical results show how wave height affects the behavior of the device. Wave heights lower than about 0.5 m overtop the floater and fall into it. As the wave height increases, phase shift between water surface and vertical displacement of the device also increases its influence on the functioning mechanism. In these situations, with wave heights between 0.5 and 0.9 m, the downward flux is due to the higher head established in the water column inside the device respect to the outside wave field. Furthermore, as the wave height grows over 0.9 m, water flux inverts the direction thanks to depression caused by the wave crest pass over the floater. In this situation the wave crest goes over the float but does not go into it and it draws water from the bottom to the surface through the device pipe. By virtue of these results a new shape of the floater has been designed and tested in CFD model. Such new geometry is based on the already known Lazzari’s profile and it aims to grab as much water as possible from the wave crest during the emergence of the floater from the wave field. Results coming from the new device are compared with the first ones in order to identify differences between the two shapes and their possible areas of application. Alma Mater Studiorum - Università di Bologna Lamberti, Alberto 2014-05-19 Doctoral Thesis PeerReviewed application/pdf en http://amsdottorato.unibo.it/6620/ info:eu-repo/semantics/openAccess
collection NDLTD
language en
format Doctoral Thesis
sources NDLTD
topic ICAR/01 Idraulica
spellingShingle ICAR/01 Idraulica
Antonini, Alessandro <1985>
Wave driven devices for the oxygenation of bottom layers
description This thesis discusses the design of a system to use wave energy to pump oxygen-rich surface water towards the bottom of the sea. A simple device, called OXYFLUX, is proposed in a scale model and tested in a wave flume in order to validate its supposed theoretical functioning. Once its effectiveness has been demonstrated, a overset mesh, CFD model has been developed and validated by means of the physical model results. Both numerical and physical results show how wave height affects the behavior of the device. Wave heights lower than about 0.5 m overtop the floater and fall into it. As the wave height increases, phase shift between water surface and vertical displacement of the device also increases its influence on the functioning mechanism. In these situations, with wave heights between 0.5 and 0.9 m, the downward flux is due to the higher head established in the water column inside the device respect to the outside wave field. Furthermore, as the wave height grows over 0.9 m, water flux inverts the direction thanks to depression caused by the wave crest pass over the floater. In this situation the wave crest goes over the float but does not go into it and it draws water from the bottom to the surface through the device pipe. By virtue of these results a new shape of the floater has been designed and tested in CFD model. Such new geometry is based on the already known Lazzari’s profile and it aims to grab as much water as possible from the wave crest during the emergence of the floater from the wave field. Results coming from the new device are compared with the first ones in order to identify differences between the two shapes and their possible areas of application.
author2 Lamberti, Alberto
author_facet Lamberti, Alberto
Antonini, Alessandro <1985>
author Antonini, Alessandro <1985>
author_sort Antonini, Alessandro <1985>
title Wave driven devices for the oxygenation of bottom layers
title_short Wave driven devices for the oxygenation of bottom layers
title_full Wave driven devices for the oxygenation of bottom layers
title_fullStr Wave driven devices for the oxygenation of bottom layers
title_full_unstemmed Wave driven devices for the oxygenation of bottom layers
title_sort wave driven devices for the oxygenation of bottom layers
publisher Alma Mater Studiorum - Università di Bologna
publishDate 2014
url http://amsdottorato.unibo.it/6620/
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