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Experimental and computational investigation of energy ball wind turbine aerodynamic performance

  • Engy Elshazly*
  • , Nabil Eltayeb
  • , Amr A. Abdel Fatah
  • , Tamer Ahmed El-Sayed
  • *Corresponding author for this work
  • The British University in Egypt
  • Helwan University

Research output: Contribution to journalArticlepeer-review

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Abstract

Small-scale wind turbines with innovative design are introduced for small applications, providing clean renewable energy to rural homes, street lighting, and hybrid systems. Energy ball wind turbine, known as Venturi wind turbine, has untraditional blades’ shape and special aerodynamic behavior that creates a venturi effect on the air stream passing through its aspherical shape. This article represents an integration of computational fluid dynamics and wind tunnel experimentation to study the aerodynamic performance of a manufactured model of energy ball wind turbine. Physical models with different twist angles were fabricated and tested in a small wind test section. In these experiments, dynamic torque, angular velocity, and coefficient of performance values were measured at different speeds. The experimental power coefficient results were discussed showing the best-tested twist angle. Fluid flow simulation has been developed in ANSYS FLUENT software. The findings of these numerical simulations have provided pressure contour, velocity contour, and torque values which help to study the solidity effect on turbine’s power coefficient. Nevertheless, the velocity contours provided from the computational analysis ensure the Venturi effect of the energy ball wind turbine design.

Original languageEnglish
Pages (from-to)1-15
Number of pages15
JournalAdvances in Mechanical Engineering
Volume11
Issue number10
Early online date9 Oct 2019
DOIs
Publication statusPublished - Oct 2019

Bibliographical note

The author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this
article: This study was supported by the British University in
Egypt and the Center for Renewable Energy.

Author contributions
E.E. prepared this manuscript. This study was carried out
under the supervision of N.E., A.A.A.F., and T.A.E.-S. All
authors carried out data analysis, discussed the results, and
contributed to writing the paper.

Funding

A  area A b  blade area C m  torque coefficient C p  power coefficient D  diameter k  turbulent kinetic energy n  number of blades N  revolution per minute P  power r  radius T  torque V  velocity ε  dissipation rate λ  tip speed ratio σ  solidity We express our appreciation to Prof. Ahmed El-Baz who provided us with many valuable consultations in both experimental and computational studies that greatly assisted the research. Handling Editor: Dean Vučinić Author contributions E.E. prepared this manuscript. This study was carried out under the supervision of N.E., A.A.A.F., and T.A.E.-S. All authors carried out data analysis, discussed the results, and contributed to writing the paper. Declaration of conflicting interests The author(s) declared no potential conflicts of interest with respect to the research, authorship, and/or publication of this article. Funding The author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: This study was supported by the British University in Egypt and the Center for Renewable Energy. ORCID iD Engy Elshazly https://orcid.org/0000-0003-2657-032X

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • aerodynamic performance
  • computational fluid dynamics
  • energy ball wind turbine
  • horizontal-axis wind turbine
  • Small-scale wind turbines

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