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Abdel Rahman Elbakheit

Associate Professor

Faculty

كلية العمارة والتخطيط
King Saud University, College of Architecture and Planning, Department of Architecture and Building Science

Factors Enhancing aerofoil Wings For energy harnessing in Buildings

This paper presents an approach towards enhanced building-integrated wind harnessing. It uses building forms and profiles to trigger continuous air entrainment to power turbines. Computational fluid dynamics is used for evaluating, testing, and optimizing proposed designs. Wind separation around buildings is modeled alongside an investigation into the parameters of a wing-profile to accelerate wind. Computational fluid dynamics provides a good tool for modeling, designing, and optimizing aerofoil shapes. The main parameters affecting the wing’s wind harnessing capabilities are the distance between the wing and the building and the angle of attack of the wing. The aerofoil can magnify wind velocity by a factor ranging from 0.53 to 3.5; that is, from just below Betz limit to over six times the limit, depending on incident velocities.

Volume Number
35
Issue Number
4
Pages
417–437
more of publication
publications

Design of Aerofoil wing enhancing air flow around buildings to be harnessed by suitable wind turbine with projected efficiency of 3-5 folds of stand-alone turbines

2021
publications

Systematic Architectural Design for Optimal Wind Energy Generation is a handy reference on the aerodynamic architectural forms in buildings for optimizing wind energy conversion processes…

2021
Published in:
Bentham
publications

While wind generated noise maybe limited in magnitude and effect, wind-induced structures’ vibrations could be a devastation (i.e., Tacoma Bridge Collapse 1940). This occurs with just above…

by Abdel Rahman Elbakheit
2018
Published in:
INTECHOPEN