An aerodynamic analysis of a novel small wind turbine based on impulse turbine principles
The paper presents both a numerical and an experimental approach to study the air flow characteristics of a novel small wind turbine and to predict its performance. The turbine model was generated based on impulse turbine principles in order to be employed in an omni-flow wind energy system in urban areas. The results have shown that the maximum flow velocity behind the stator can be increased by 20% because of a nozzle cascade from the stator geometry. It was also observed that a wind turbine with a 0.3 m rotor diameter achieved the maximum power coefficient of 0.17 at the tip speed ratio of 0.6 under the wind velocity of 8.2 m/s. It was also found that the power coefficient was linked to the hub-to-tip ratio and reached its maximum value when the hub-to-tip ratio was 0.45. It is evident that this new wind turbine has the potential for low working noise and good starting feature compared with a conventional horizontal axis wind turbine.
Year of publication: |
2015
|
---|---|
Authors: | Ying, Pei ; Chen, Yong Kang ; Xu, Yi Geng |
Published in: |
Renewable Energy. - Elsevier, ISSN 0960-1481. - Vol. 75.2015, C, p. 37-43
|
Publisher: |
Elsevier |
Subject: | Wind energy | CFD | Wind tunnel test | Impulse wind turbine | Power coefficient |
Saved in:
Online Resource
Saved in favorites
Similar items by subject
-
Wind tunnel test for the NREL phase VI rotor with 2 m diameter
Cho, Taehwan, (2014)
-
Computational and experimental investigations of an omni-flow wind turbine
Ying, P., (2015)
-
An experimental and numerical study of the gap effect on wind load on heliostat
Wu, Zhiyong, (2010)
- More ...