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Forum Index : Windmills : swept area of savonius rotor
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| ewells13 Newbie  Joined: 07/05/2008 Location: AustraliaPosts: 1 |
Chasing some info on how to calculate the "swept area" of a simple two-blade savonius rotor. Anything would be much appreciated, thanks Elliott |
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Gizmo Admin Group  Joined: 05/06/2004 Location: AustraliaPosts: 5116 |
Do you want swept area or wind frontage? On a HAWT windmill, the swept area is also the area facing the wind. This is the area of wind the turbine can extract power from. Area would be Pi*R*R ( Pi R squared ). The swept area of a VAWT ( eg Savonius ) isn't really relevant. The wind frontage, that is the area facing the wind, would be calculated with diameter by height. So a 2 meter diameter Savonius that was 3 meters high would have a area facing the wind of 6 square meters. But a VAWT could be making power from the back as well as the front. A high speed Darius windmill makes power for over 300degress of its rotation, even when the blades are heading upwind they are making power. Glenn The best time to plant a tree was twenty years ago, the second best time is right now. JAQ |
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Wells Newbie Joined: 05/05/2008 Location: AustraliaPosts: 2 |
Thanks Glenn, I thought I was chasing swept area. The reason I want it is I have a BASIC equation for the calculation of power for a rotor (P=0.5*rho*A*V^3), where A is swept area; but I wasnt sure if you use the frontal area for a Savonius rotor due to the fact that at any one time only one rotor (half the diameter) is catching the wind... Reading your reply I am guessing this assumption is incorrect? Elliott EWells |
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GWatPE Senior Member  Joined: 01/09/2006 Location: AustraliaPosts: 2127 |
Hi Elliott, The equation you have presented is the energy of the moving air related to the velocity and the density and the cross section that is moving. The Rotor power will have additional vane/blade efficiency factors and then there may be gearing losses and alternator/generator efficiency factors. For a fair comparison with other turbine types, the total area that is in the wind should be included. The efficiency would be the power extracted from the total cross section in the wind, divided by the calculated power in the wind at that moment for that same cross section... .. Gordon. become more energy aware |
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| Wells Newbie Joined: 05/05/2008 Location: AustraliaPosts: 2 |
Thanks very much Gordon, well explained Elliott EWells |
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