RESEARCH ARTICLE

Performance of vertical axis water turbine with eye-shaped baffle for pico hydropower

  • Zhuohuan HU 1 ,
  • Dongcheng WANG 1 ,
  • Wei LU 1 ,
  • Jian CHEN 1 ,
  • Yuwen ZHANG , 2
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  • 1. Shanghai Key Laboratory of Multiphase Flow and Heat Transfer in Power Engineering, School of Energy and Power Engineering, University of Shanghai for Science and Technology, Shanghai 20093, China
  • 2. Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO 65211, USA

Received date: 11 Apr 2020

Accepted date: 11 Jun 2020

Published date: 15 Aug 2022

Copyright

2020 Higher Education Press

Abstract

A series of inline pico hydropower systems, which could be used in confined space, especially for water distribution networks (WDNs), was designed and investigated. The turbine with an eye-shaped vertical water baffle was developed to evaluate the hydraulic performance. A three-dimensional dynamic mesh was employed and the inlet velocity was considered as the inlet boundary condition, whereas the outlet boundary was set as the outflow. Then, numerical simulations were conducted and the standard k-ε turbulence model was found to be the best capable of predicting flow features through the comparison with the experimental results. The effects of the opening diameter of the water baffle and installation angle of the rotor on the flow field in the turbine were investigated. The results suggested that the water baffle opening at d = 30 mm and the rotor at a 52° angle could achieve the highest efficiency of 5.93%. The proper eye-shaped baffle not only accelerates the fluid flow and generates positive hydrodynamic torque, but also eliminates the flow separation. The scheme proposed in this paper can be exploited for practical applications in the water pipelines at various conditions and power requirements.

Cite this article

Zhuohuan HU , Dongcheng WANG , Wei LU , Jian CHEN , Yuwen ZHANG . Performance of vertical axis water turbine with eye-shaped baffle for pico hydropower[J]. Frontiers in Energy, 2022 , 16(4) : 683 -696 . DOI: 10.1007/s11708-020-0689-9

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