Gas transfer under breaking waves: experiments and an improved vorticity-based model

In the present paper a modified vorticity-based model for gas transfer under breaking waves in the absence of significant wind forcing is presented. A theoretically valid and practically applicable mathematical expression is suggested for the assessment of the oxygen transfer coefficient in the a...

Full description

Bibliographic Details
Main Authors: V. K. Tsoukala, C. I. Moutzouris
Format: Article
Language:English
Published: Copernicus Publications 2008-07-01
Series:Annales Geophysicae
Online Access:https://www.ann-geophys.net/26/2131/2008/angeo-26-2131-2008.pdf
id doaj-0f045d5487004846b7111144b2eb244d
record_format Article
spelling doaj-0f045d5487004846b7111144b2eb244d2020-11-24T23:59:45ZengCopernicus PublicationsAnnales Geophysicae0992-76891432-05762008-07-01262131214210.5194/angeo-26-2131-2008Gas transfer under breaking waves: experiments and an improved vorticity-based modelV. K. Tsoukala0C. I. Moutzouris1Laboratory of Harbor Works (LHW), School of Civil Engineering, National Technical University of Athens (N.T.U.A.), 5 Iroon Polytechniou 157 80 Zografou, GreeceLaboratory of Harbor Works (LHW), School of Civil Engineering, National Technical University of Athens (N.T.U.A.), 5 Iroon Polytechniou 157 80 Zografou, GreeceIn the present paper a modified vorticity-based model for gas transfer under breaking waves in the absence of significant wind forcing is presented. A theoretically valid and practically applicable mathematical expression is suggested for the assessment of the oxygen transfer coefficient in the area of wave-breaking. The proposed model is based on the theory of surface renewal that expresses the oxygen transfer coefficient as a function of both the wave vorticity and the Reynolds wave number for breaking waves. <br><br> Experimental data were collected in wave flumes of various scales: a) small-scale experiments were carried out using both a sloping beach and a rubble-mound breakwater in the wave flume of the Laboratory of Harbor Works, NTUA, Greece; b) large-scale experiments were carried out with a sloping beach in the wind-wave flume of Delft Hydraulics, the Netherlands, and with a three-layer rubble mound breakwater in the Schneideberg Wave Flume of the Franzius Institute, University of Hannover, Germany. <br><br> The experimental data acquired from both the small- and large-scale experiments were in good agreement with the proposed model. Although the apparent transfer coefficients from the large-scale experiments were lower than those determined from the small-scale experiments, the actual oxygen transfer coefficients, as calculated using a discretized form of the transport equation, are in the same order of magnitude for both the small- and large-scale experiments. The validity of the proposed model is compared to experimental results from other researchers. <br><br> Although the results are encouraging, additional research is needed, to incorporate the influence of bubble mediated gas exchange, before these results are used for an environmental friendly design of harbor works, or for projects involving waste disposal at sea.https://www.ann-geophys.net/26/2131/2008/angeo-26-2131-2008.pdf
collection DOAJ
language English
format Article
sources DOAJ
author V. K. Tsoukala
C. I. Moutzouris
spellingShingle V. K. Tsoukala
C. I. Moutzouris
Gas transfer under breaking waves: experiments and an improved vorticity-based model
Annales Geophysicae
author_facet V. K. Tsoukala
C. I. Moutzouris
author_sort V. K. Tsoukala
title Gas transfer under breaking waves: experiments and an improved vorticity-based model
title_short Gas transfer under breaking waves: experiments and an improved vorticity-based model
title_full Gas transfer under breaking waves: experiments and an improved vorticity-based model
title_fullStr Gas transfer under breaking waves: experiments and an improved vorticity-based model
title_full_unstemmed Gas transfer under breaking waves: experiments and an improved vorticity-based model
title_sort gas transfer under breaking waves: experiments and an improved vorticity-based model
publisher Copernicus Publications
series Annales Geophysicae
issn 0992-7689
1432-0576
publishDate 2008-07-01
description In the present paper a modified vorticity-based model for gas transfer under breaking waves in the absence of significant wind forcing is presented. A theoretically valid and practically applicable mathematical expression is suggested for the assessment of the oxygen transfer coefficient in the area of wave-breaking. The proposed model is based on the theory of surface renewal that expresses the oxygen transfer coefficient as a function of both the wave vorticity and the Reynolds wave number for breaking waves. <br><br> Experimental data were collected in wave flumes of various scales: a) small-scale experiments were carried out using both a sloping beach and a rubble-mound breakwater in the wave flume of the Laboratory of Harbor Works, NTUA, Greece; b) large-scale experiments were carried out with a sloping beach in the wind-wave flume of Delft Hydraulics, the Netherlands, and with a three-layer rubble mound breakwater in the Schneideberg Wave Flume of the Franzius Institute, University of Hannover, Germany. <br><br> The experimental data acquired from both the small- and large-scale experiments were in good agreement with the proposed model. Although the apparent transfer coefficients from the large-scale experiments were lower than those determined from the small-scale experiments, the actual oxygen transfer coefficients, as calculated using a discretized form of the transport equation, are in the same order of magnitude for both the small- and large-scale experiments. The validity of the proposed model is compared to experimental results from other researchers. <br><br> Although the results are encouraging, additional research is needed, to incorporate the influence of bubble mediated gas exchange, before these results are used for an environmental friendly design of harbor works, or for projects involving waste disposal at sea.
url https://www.ann-geophys.net/26/2131/2008/angeo-26-2131-2008.pdf
work_keys_str_mv AT vktsoukala gastransferunderbreakingwavesexperimentsandanimprovedvorticitybasedmodel
AT cimoutzouris gastransferunderbreakingwavesexperimentsandanimprovedvorticitybasedmodel
_version_ 1725446356614512640