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<title>Faculty and Researchers</title>
<link>http://hdl.handle.net/1721.1/46702</link>
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<dc:date>2013-05-21T12:32:24Z</dc:date>
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<item rdf:about="http://hdl.handle.net/1721.1/46707">
<title>Potential Flow Calculations of Axisymmetric Ducted Wind Turbines</title>
<link>http://hdl.handle.net/1721.1/46707</link>
<description>Potential Flow Calculations of Axisymmetric Ducted Wind Turbines
Widnall, Sheila
An incompressible potential-flow vortex method has been constructed to analyze the flow field of a ducted&#13;
wind turbine following that outlined by Lewis (1991). Attention is paid to balancing the momentum change&#13;
in the flow to the total longitudinal forces acting on the duct-turbine combination: the pressure force on&#13;
the actuator disk plus the pressure forces acting on the duct, which typically includes a negative component&#13;
of drag due to high leading-edge suction. These forces are shown to balance the momentum changes in&#13;
the flow, resulting in a model for power output from a ducted wind turbine over a wide range of pressure&#13;
changes across the actuator disk. The results are compared to the Betz actuator disk model and it is shown&#13;
that the maximum power output from a ducted turbine occurs at a lower value of pressure drop/momentum&#13;
extraction than that for a bare turbine.
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<dc:date>2009-09-02T18:05:53Z</dc:date>
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