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Wave run-up and second-order wave forces on a truncated circular cylinder due to monochromatic waves

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dc.contributor.author Mavrakos, SA en
dc.contributor.author Chatjigeorgiou, IK en
dc.contributor.author Lentziou, DM en
dc.date.accessioned 2014-03-01T02:50:13Z
dc.date.available 2014-03-01T02:50:13Z
dc.date.issued 2005 en
dc.identifier.uri https://dspace.lib.ntua.gr/xmlui/handle/123456789/34971
dc.relation.uri http://www.scopus.com/inward/record.url?eid=2-s2.0-27744563605&partnerID=40&md5=7fa34e4976eb7895f21410737a6f891f en
dc.subject.other Boundary conditions en
dc.subject.other Diffraction en
dc.subject.other Flow of fluids en
dc.subject.other Numerical methods en
dc.subject.other Pressure distribution en
dc.subject.other Problem solving en
dc.subject.other Double frequency diffraction potential en
dc.subject.other Free wave component en
dc.subject.other Gauss-Legendre numerical techniques en
dc.subject.other Truncated cylinders en
dc.subject.other Cylinders (shapes) en
dc.title Wave run-up and second-order wave forces on a truncated circular cylinder due to monochromatic waves en
heal.type conferenceItem en
heal.identifier.secondary OMAE2005-67104 en
heal.publicationDate 2005 en
heal.abstract The second-order diffraction potential around a truncated cylinder is considered. The solution method is based on a semi-analytical formulation for the double frequency diffraction potential. The later is properly decomposed into three components in order to satisfy all boundary conditions involved in the problem. The solution process results in a Sturm-Liouville problem for the ring-shaped outer fluid region, which is defined by the geometry of the structure. The matching of the potentials along the boundaries of neighborhood fluid regions is established with the aid of the 'free' wave component The calculation of integral of the pressure distribution on the free surface is carried out using an appropriate Gauss-Legendre numerical technique. The efficiency of the method described in the present is validated through comparative numerical results. Copyright © 2005 by ASME. en
heal.journalName Proceedings of the International Conference on Offshore Mechanics and Arctic Engineering - OMAE en
dc.identifier.volume 1 A en
dc.identifier.spage 231 en
dc.identifier.epage 238 en


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