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        <rdf:li rdf:resource="http://210.212.227.212:8080/xmlui/handle/123456789/199" />
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    <dc:date>2026-05-27T20:57:58Z</dc:date>
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  <item rdf:about="http://210.212.227.212:8080/xmlui/handle/123456789/199">
    <title>DESIGN AND DYNAMIC ANALYSIS OF THREE- LEGGED ARTICULATED SUPPORTING TOWER FOR OFFSHORE WIND TURBINE</title>
    <link>http://210.212.227.212:8080/xmlui/handle/123456789/199</link>
    <description>Title: DESIGN AND DYNAMIC ANALYSIS OF THREE- LEGGED ARTICULATED SUPPORTING TOWER FOR OFFSHORE WIND TURBINE
Authors: Chinsu, Mereena Joy
Abstract: Demand for renewable energy sources is rapidly increasing since they are able to replenish&#xD;
the depleting fossil fuels and their capacity to act as a carbon neutral energy source. A&#xD;
substantial amount of such clean, renewable and reliable energy potential exists in offshore&#xD;
winds. The major engineering challenge in establishing an offshore wind energy facility is the&#xD;
design of a reliable and financially viable offshore support for the wind turbine tower. An&#xD;
economically viable support for an offshore wind turbine is a compliant platform since it&#xD;
moves with wave forces and offer less resistance to them. Amongst the several compliant&#xD;
type offshore structures, articulated type is an innovative one. It is flexibly linked to the&#xD;
seafloor and can move along with the waves and restoring is achieved by the horizontal&#xD;
component of the large buoyancy force.&#xD;
An innovative concept, three-legged articulated support for an offshore wind turbine is&#xD;
designed in this thesis. The platform is designed to support the National Renewable Energy&#xD;
Laboratory (NREL) 5 MW reference turbine in a water depth of 144 m. Experimental and&#xD;
numerical investigations are done on the designed three-legged articulated structure&#xD;
supporting the above 5 MW wind turbine. The experimental investigations are performed on&#xD;
a 1: 60 scaled model in a 4 m wide wave flume at the Department of Ocean Engineering,&#xD;
Indian Institute of Technology, Madras. The experimental investigation includes free&#xD;
oscillation study and motion response under regular waves. The tests are conducted for&#xD;
regular waves of various wave periods and wave heights and for different orientations of the&#xD;
platform. The motion responses are presented in the form of Response Amplitude Operators&#xD;
(RAO). The results from the experimental study revealed that the proposed articulated&#xD;
structure is technically feasible in supporting the offshore wind turbine because the natural&#xD;
frequencies are away from ocean wave frequencies which make the RAOs relatively small&#xD;
and the tower always remains vertical.&#xD;
The numerical study is carried out using hydrodynamic software ANSYS AQWA. The&#xD;
natural periods computed and those obtained from free oscillation experiment are in good&#xD;
agreement, indicating that all principal effects are incorporated in the numerical model. The&#xD;
comparison of the experimental and numerical results for regular waves show that the surge&#xD;
&#xD;
v&#xD;
&#xD;
responses agreed well with the experiments conducted and is revealed through favourable&#xD;
comparison of Response Amplitude Operator in the predominant degree of freedom (surge).&#xD;
Thereafter, to investigate the complete behaviour of this compliant support system under the&#xD;
actual ocean environment, a comprehensive numerical investigation on the various aspects of&#xD;
dynamic response of the three-legged articulated wind tower under different sea states are&#xD;
evaluated for several waves as well as combined wind and wave cases. The results show that&#xD;
this three-legged articulated support is a promising concept for supporting an offshore wind&#xD;
turbine.</description>
    <dc:date>2021-05-04T00:00:00Z</dc:date>
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