Modeling and analysis of a fully passive swinging sail wind turbine

Abstract Wind energy has been an attractive renewable energy source, and in recent decades, highly efficient horizontal axis wind turbines have been developed and successfully deployed. However, alternative designs for wind energy conversion have also been proposed. In previous studies, a novel swin...

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Main Authors: Radmarz Hosseinie, Reza Roohi, Goodarz Ahmadi
Format: Article
Language:English
Published: Wiley 2021-07-01
Series:Wind Energy
Subjects:
Online Access:https://doi.org/10.1002/we.2595
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spelling doaj-a6673c1594374b5ba1752d8eb6ac5dad2021-06-10T07:11:50ZengWileyWind Energy1095-42441099-18242021-07-0124765367110.1002/we.2595Modeling and analysis of a fully passive swinging sail wind turbineRadmarz Hosseinie0Reza Roohi1Goodarz Ahmadi2Department of Mechanical Engineering, College of Engineering Fasa University Fasa IranDepartment of Mechanical Engineering, College of Engineering Fasa University Fasa IranDepartment of Mechanical and Aeronautical Engineering Clarkson University Potsdam New York USAAbstract Wind energy has been an attractive renewable energy source, and in recent decades, highly efficient horizontal axis wind turbines have been developed and successfully deployed. However, alternative designs for wind energy conversion have also been proposed. In previous studies, a novel swing sail design for wind energy harvesting was proposed and analyzed. This turbine harvests energy by pitching a sail, causing a mast to swing, which in turn drives a flywheel in a rectified rotational motion. The rotating flywheel is then used to drive an electric generator. The designed turbine was originally semiactive, while in the present study, the fully passive version of the turbine was proposed, and its performance was examined. The turbine consists of an oscillating sail attached to a reciprocally moving mast via a torsion spring, and the wind‐driven oscillatory motion is transformed into the rotational motion of a flywheel using a ratchet. Furthermore, a dry‐friction dynamometer was utilized as a simple way of extracting energy. The dynamical equations of the turbine were derived and were used to analyze the time response of the turbine. In the model, the correlations for the aerodynamic lift and drag forces for a flat plate were utilized. The results were validated using the computation fluid dynamics (CFD) simulation. The effects of various dynamical and geometric parameters of the turbine on the generated power and the turbine performance were also investigated.https://doi.org/10.1002/we.2595CFD simulationfully passivemicrosize wind turbineswinging sailwind harvesting
collection DOAJ
language English
format Article
sources DOAJ
author Radmarz Hosseinie
Reza Roohi
Goodarz Ahmadi
spellingShingle Radmarz Hosseinie
Reza Roohi
Goodarz Ahmadi
Modeling and analysis of a fully passive swinging sail wind turbine
Wind Energy
CFD simulation
fully passive
microsize wind turbine
swinging sail
wind harvesting
author_facet Radmarz Hosseinie
Reza Roohi
Goodarz Ahmadi
author_sort Radmarz Hosseinie
title Modeling and analysis of a fully passive swinging sail wind turbine
title_short Modeling and analysis of a fully passive swinging sail wind turbine
title_full Modeling and analysis of a fully passive swinging sail wind turbine
title_fullStr Modeling and analysis of a fully passive swinging sail wind turbine
title_full_unstemmed Modeling and analysis of a fully passive swinging sail wind turbine
title_sort modeling and analysis of a fully passive swinging sail wind turbine
publisher Wiley
series Wind Energy
issn 1095-4244
1099-1824
publishDate 2021-07-01
description Abstract Wind energy has been an attractive renewable energy source, and in recent decades, highly efficient horizontal axis wind turbines have been developed and successfully deployed. However, alternative designs for wind energy conversion have also been proposed. In previous studies, a novel swing sail design for wind energy harvesting was proposed and analyzed. This turbine harvests energy by pitching a sail, causing a mast to swing, which in turn drives a flywheel in a rectified rotational motion. The rotating flywheel is then used to drive an electric generator. The designed turbine was originally semiactive, while in the present study, the fully passive version of the turbine was proposed, and its performance was examined. The turbine consists of an oscillating sail attached to a reciprocally moving mast via a torsion spring, and the wind‐driven oscillatory motion is transformed into the rotational motion of a flywheel using a ratchet. Furthermore, a dry‐friction dynamometer was utilized as a simple way of extracting energy. The dynamical equations of the turbine were derived and were used to analyze the time response of the turbine. In the model, the correlations for the aerodynamic lift and drag forces for a flat plate were utilized. The results were validated using the computation fluid dynamics (CFD) simulation. The effects of various dynamical and geometric parameters of the turbine on the generated power and the turbine performance were also investigated.
topic CFD simulation
fully passive
microsize wind turbine
swinging sail
wind harvesting
url https://doi.org/10.1002/we.2595
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