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http://dx.doi.org/10.5293/IJFMS.2016.9.2.169

Performance and Flow Condition of Cross-Flow Wind Turbine with a Symmetrical Casing Having Side Boards  

Shigemitsu, Toru (Institute of Technology and Science, Tokushima University)
Fukutomi, Junichiro (Institute of Technology and Science, Tokushima University)
Toyohara, Masaaki (Graduate School of Advanced Technology and Science, Tokushima University)
Publication Information
International Journal of Fluid Machinery and Systems / v.9, no.2, 2016 , pp. 169-174 More about this Journal
Abstract
A cross-flow wind turbine has a high torque coefficient at a low tip speed ratio. Therefore, it is a good candidate for use as a self-starting turbine. Furthermore, it has low noise and excellent stability; therefore, it has attracted attention from the viewpoint of applications as a small wind turbine for an urban district. However, its maximum power coefficient is extremely low (10 %) as compared to that of other small wind turbines. In order to improve the performance and flow condition of the cross-flow rotor, the symmetrical casing with a nozzle and a diffuser are proposed and the experimental research with the symmetrical casing is conducted. The maximum power coefficient is obtained as $C_{pmax}=0.17$ in the case with the casing and $C_{pmax}=0.098$ in the case without the casing. In the present study, the power characteristics of the cross-flow rotor and those of the symmetrical casing with the nozzle and diffuser are investigated. Then, the performance and internal flow patterns of the cross-flow wind turbine with the symmetrical casings are clarified. After that, the effect of the side boards set on the symmetrical casing is discussed on the basis of the analysis results.
Keywords
Cross-flow wind turbine; Power coefficient; Torque coefficient; Symmetrical casing; Numerical analysis;
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