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dc.creatorGelagoti F.M., Kourkoulis R.S., Georgiou I.A., Karamanos S.A.en
dc.date.accessioned2023-01-31T07:40:05Z
dc.date.available2023-01-31T07:40:05Z
dc.date.issued2019
dc.identifier10.1115/1.4043505
dc.identifier.issn08927219
dc.identifier.urihttp://hdl.handle.net/11615/72021
dc.description.abstractThis paper explores the performance of a 10 MW offshore wind turbine (OWT) supported either on a large diameter monopile or a 4-legged jacket emphasizing on the nonlinear response of its belowseabed foundation. The seabed foundation alternatives, a monopile and a multipod foundation, are compared under monotonic, cyclic, and seismic loading. For all nonseismic scenarios considered, the monopile is more flexible than the jacket and transmits higher rotations at the OWT base. The differences between the two alternatives are amplified in the case of nonsymmetric cyclic loading; the monopile not only deforms more than the jacket but tends to accumulate irrecoverable rotation with increasing loading cycles. The seismic performance of the alternative support structures is assessed for a comprehensive set of earthquake motions. It is concluded that both systems are seismically robust especially when subjected to pure earthquake loading, neglecting the simultaneous action of wind and waves. Alarming issues for OWT performance may arise when a nonzero steady wind force is superimposed to the kinematically induced stressing of the seabed foundation due to the seismic wave action. Jacket legs settle unevenly, while monopiles are building up rotations at increasing rates. Assuming a design-level earthquake and a wind thrust of the order 60% of the NC wind loading amplitude, this seismically induced residual rotation for the monopile may often exceed the deformation tolerance criterion. For the same loading combination, the corresponding rotation of the Jacket installation remains safely within the prescribed limits. Copyright © 2019 by ASME.en
dc.language.isoenen
dc.sourceJournal of Offshore Mechanics and Arctic Engineeringen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85065661287&doi=10.1115%2f1.4043505&partnerID=40&md5=529fb92c85c79e8d6b741bd89d54f72d
dc.subjectGround supportsen
dc.subjectInduced Seismicityen
dc.subjectLoads (forces)en
dc.subjectOffshore oil well productionen
dc.subjectOffshore wind turbinesen
dc.subjectPilesen
dc.subjectRotationen
dc.subjectSeismic wavesen
dc.subjectSoil structure interactionsen
dc.subjectEarthquake loadingsen
dc.subjectEarthquake motionen
dc.subjectNon-linear responseen
dc.subjectSeabed foundationsen
dc.subjectSeismic loadingsen
dc.subjectSeismic Performanceen
dc.subjectSoil-Structure Interaction effectsen
dc.subjectSupport structuresen
dc.subjectEarthquakesen
dc.subjectearthquake eventen
dc.subjectinstallationen
dc.subjectloadingen
dc.subjectoffshore structureen
dc.subjectseismic responseen
dc.subjectseismic waveen
dc.subjectsoil structureen
dc.subjectthrust faulten
dc.subjectwind farmen
dc.subjectwind turbineen
dc.subjectAmerican Society of Mechanical Engineers (ASME)en
dc.titleSoil-Structure Interaction Effects in Offshore Wind Support Structures under Seismic Loadingen
dc.typejournalArticleen


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