Application of a Diffuser Structure to Vertical-Axis Wind Turbines

被引:35
|
作者
Watanabe, Koichi [1 ]
Takahashi, Shuhei [1 ]
Ohya, Yuji [2 ]
机构
[1] Kyushu Univ, Dept Aeronaut & Astronaut, Fukuoka 8168580, Japan
[2] Kyushu Univ, Appl Mech Res Inst, Fukuoka 8168580, Japan
来源
ENERGIES | 2016年 / 9卷 / 06期
关键词
wind lens; vertical-axis wind turbine; wind acceleration device; wind tunnel experiment;
D O I
10.3390/en9060406
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The effects of using a wind acceleration device (wind lens) with vertical-axis wind turbines in wind tunnel experiments were examined. A wind lens consists of a diffuser and flanges, and this study investigated the optimum parameters of their configuration with regard to the power augmentation of the turbines. The wind lens with a flat-panel-type diffuser demonstrated power augmentation by a factor of 2.0 compared with an open wind turbine. An increase from 5 to 20 degrees in the semi-open angle of the diffuser made it possible to generate a 30% high power output over a wide range of tip speed ratios. On that basis, an optimum semi-open angle was determined. For the flat-panel-type diffuser, a recommended diffuser length is the half of the throat width, and its semi-open angle is 20 degrees. The inlet enhanced power augmentation over a wide range of tip speed ratios. The optimum location for the wind lens in the streamwise direction was aligned with the center of the vertical-axis wind turbines. The diffuser with a curved surface was more effective regarding power augmentation than flat-panel-type diffusers. The wind lens with a curved surface diffuser demonstrated power augmentation by a factor of about 2.1 compared with an open wind turbine. Furthermore, it was demonstrated that a two-bladed wind turbine with symmetric NACA0024-type airfoils was most suitable for the incorporation of a wind lens to generate higher power output.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Vertical-Axis Wind Turbines for Powering Cellular Communication Towers
    Plourde, B.
    Abraham, J.
    Mowry, G.
    Minkowycz, W.
    CLEAN TECHNOLOGY 2011: BIOENERGY, RENEWABLES, STORAGE, GRID, WASTE AND SUSTAINABILITY, 2011, : 35 - 38
  • [32] Vertical-Axis Wind Turbines for Powering Cellular Communication Towers
    Plourde, B.
    Abraham, J.
    Mowry, G.
    Minkowycz, W.
    NANOTECHNOLOGY 2011: BIO SENSORS, INSTRUMENTS, MEDICAL, ENVIRONMENT AND ENERGY, NSTI-NANOTECH 2011, VOL 3, 2011, : 750 - 753
  • [33] SOME CONTRIBUTIONS TO AERODYNAMIC THEORY FOR VERTICAL-AXIS WIND TURBINES
    ASHLEY, H
    JOURNAL OF ENERGY, 1978, 2 (02): : 113 - 119
  • [34] Effect of turbulence on the performance of a pair of vertical-axis wind turbines
    Talamalek, Ayoub
    Runacres, Mark C.
    De Troyer, Tim
    SCIENCE OF MAKING TORQUE FROM WIND, TORQUE 2022, 2022, 2265
  • [36] Near-wake structure of full-scale vertical-axis wind turbines
    Wei, Nathaniel J.
    Brownstein, Ian D.
    Cardona, Jennifer L.
    Howland, Michael F.
    Dabiri, John O.
    JOURNAL OF FLUID MECHANICS, 2021, 914
  • [37] Wind Tunnel testing of small Vertical-Axis Wind Turbines in Turbulent Flows
    Molina, Andreu Carbo
    Bartoli, Gianni
    de Troyer, Tim
    X INTERNATIONAL CONFERENCE ON STRUCTURAL DYNAMICS (EURODYN 2017), 2017, 199 : 3176 - 3181
  • [38] Benefits of collocating vertical-axis and horizontal-axis wind turbines in large wind farms
    Xie, Shengbai
    Archer, Cristina L.
    Ghaisas, Niranjan
    Meneveau, Charles
    WIND ENERGY, 2017, 20 (01) : 45 - 62
  • [39] INFLUENCE OF BLADE CAMBER ON THE OUTPUT OF VERTICAL-AXIS WIND TURBINES.
    Healy, J.V.
    Wind Engineering, 1978, 2 (03) : 146 - 155
  • [40] Analytical Model for Phase Synchronization of a Pair of Vertical-Axis Wind Turbines
    Furukawa, Masaru
    Hara, Yutaka
    Jodai, Yoshifumi
    ENERGIES, 2022, 15 (11)