4.7 Article

High-resolution numerical simulation of the performance of vertical axis wind turbines in urban area: Part I, wind turbines on the side of single building

Journal

RENEWABLE ENERGY
Volume 177, Issue -, Pages 461-474

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.renene.2021.04.071

Keywords

Vertical axis wind turbine; Wind energy; Urban area; Computational fluid dynamics; Building

Funding

  1. National Key R&D Program of China [2019YFB1504402, 2017YFE0132000, 2018YFB1501202, 2019YFE0102500]
  2. Natural Science Foundation of China [51761135012, 11872248, 11902198]
  3. Center for High Performance Computing, Shanghai Jiao Tong University
  4. NASA/AISR project [NNG04GP79G]

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The feasibility of installing vertical axis wind turbines on the side of buildings was verified using a high-resolution numerical method. The study showed that wind turbines in specific flow regions can significantly increase energy output, and optimizing the arrangement of multiple wind turbines around the building can improve overall energy output. Through changing the rotational directions of the wind turbines, the energy output of all turbines can be enhanced.
In urban areas, vertical axis wind turbines have been installed on both sides of the road and rooftop. Compared with rooftop, vertical axis wind turbines mounted on the side of a building have a larger swept area with longer blades, and the effect of tip vortices can be reduced at the same time. Around the building, there are several high wind speed regions that can provide more wind energy. In this paper, a high-resolution numerical method composed of overset grid and adaptive mesh refinement techniques is adopted to verify the feasibility of vertical axis wind turbines mounted on the side of the building. Firstly, the complex flow field around the building is simplified into the flow field around the cylindrical building. Five typical flow regions with different flow conditions are determined: windward zone, crosswind zone, tailwind zone, recirculation zone and leeward zone. Secondly, wind turbines are installed evenly around the building. The simulation results show that the energy output of wind turbines in tailwind zone can be increased by 120% compared with the reference value. Thirdly, multiple wind turbines are coupled with the building. In order to get the optimal arrangement, power outputs of four arrangements are compared for the best choice. The results indicate that the arrangement with six wind turbines in crosswind zone and tailwind zone can achieve the best performance. Through changing the rotational directions, the forward blades of wind turbines can be close to the wall, and the energy output of all the wind turbines around the building can be improved. (c) 2021 Elsevier Ltd. All rights reserved.

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