Water turbines with a brimmed diffuser by using wind lens technology

被引:0
|
作者
Watanabe K. [1 ]
Ohya Y. [2 ]
机构
[1] Kyushu University, Platform of Inter/Transdisciplinary Energy Research, Kasuga
[2] Research Institute for Applied Mechanics, Kyushu University, Kasuga
关键词
Diffuser-type structure; Power augmentation; Water turbine; Wind-lens technology;
D O I
10.1615/INTERJENERCLEANENV.2020035110
中图分类号
学科分类号
摘要
A diffuser-type structure that is capable of collecting and accelerating the approaching wind and water flow has been developed. Namely, we have devised a diffuser shroud with a brim that is able to increase the approaching flow speed substantially by utilizing various flow characteristics, e.g., the generation of low-pressure region by vortex formation, flow entrainment by vortices, and so on, of the inner or peripheral flows of a diffuser shroud equipped with a brim. As a result, the shrouded wind turbines equipped with a brimmed diffuser (called wind-lens turbine, WLT) demonstrated power augmentation for a given turbine diameter and wind speed by a factor of about 2-5 compared to a standard wind turbine. The mechanism of the wind-lens technology can also be applied to the water flow. Water-lens turbine (WaLT) demonstrated 2.5-times power enhancement using a similar diffuser design used in a compact wind-lens turbine. In this research, we show some experimental and numerical results, focusing on a water turbine using wind-lens technology immersed into a water tank with a finite width and depth. Due to the effects of free surface and Venturi-shaped side walls, the maximum power coefficient Cw reaches 2.21 based on the rotor swept area, indicating 6-times increase compared to that for a conventional water turbine in an open flow. © 2021 by Begell House, Inc.
引用
收藏
页码:33 / 45
页数:12
相关论文
共 50 条
  • [21] Aerodynamic optimization of the blades of diffuser-augmented wind turbines
    Vaz, Jerson R. P.
    Wood, David H.
    ENERGY CONVERSION AND MANAGEMENT, 2016, 123 : 35 - 45
  • [22] Diffuser augmented wind turbines: Review and assessment of theoretical models
    Bontempo, R.
    Manna, M.
    APPLIED ENERGY, 2020, 280
  • [23] Application of a Diffuser Structure to Vertical-Axis Wind Turbines
    Watanabe, Koichi
    Takahashi, Shuhei
    Ohya, Yuji
    ENERGIES, 2016, 9 (06):
  • [24] FLUID-DYNAMICS OF DIFFUSER-AUGMENTED WIND TURBINES
    GILBERT, BL
    OMAN, RA
    FOREMAN, KM
    JOURNAL OF ENERGY, 1978, 2 (06): : 368 - 374
  • [25] The Joukowsky rotor for diffuser augmented wind turbines: design and analysis
    Bontempo, R.
    Manna, M.
    ENERGY CONVERSION AND MANAGEMENT, 2022, 252
  • [26] Technology for offshore wind turbines
    Moe, G.
    Niedzwecki, J. M.
    Long, H.
    Lubbadl, R.
    Breton, S. -P.
    FLUID STRUCTURE INTERACTION AND MOVING BOUNDARY PROBLEMS IV, 2007, 92 : 95 - +
  • [27] Stealth technology for wind turbines
    Pinto, J.
    Matthews, J. C. G.
    Sarno, G. C.
    IET RADAR SONAR AND NAVIGATION, 2010, 4 (01): : 126 - 133
  • [28] Diffuser augmented wind turbines - a case study for hybrid energy system applications and comparison with horizontal axis wind turbines
    Mohanan, Janesh N.
    Kumaravel, S.
    Ashok, S.
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2022, 44 (03) : 6807 - 6822
  • [29] Rotor blade design technology and analysis of small-scale diffuser augmented wind turbines under the lower-wind-speed wind field
    Chen, Yaqiong
    Fang, Yuefa
    Guo, Sheng
    Ye, Wei
    Energy Education Science and Technology Part A: Energy Science and Research, 2014, 32 (06): : 6385 - 6396
  • [30] Design and Analysis of Small-scale Diffuser Augment Wind Turbines
    Chen Yaqiong
    Fang Yuefa
    PROCEEDINGS OF THE 2015 INTERNATIONAL INDUSTRIAL INFORMATICS AND COMPUTER ENGINEERING CONFERENCE, 2015, : 1088 - 1093