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Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations

In this thesis, a computational framework is proposed for optimizing the aerodynamic shape of bluff bodies used in galloping-based wind energy harvesters. The system targets low-wind speed environments, where normal wind turbines are not effective, offering a potential alternative to batteries used...

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Main Author: AbdelMoneim, Youssef Wael
Format: Thesis
Published: AUC Knowledge Fountain 2026
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access_status_str Open Access
author AbdelMoneim, Youssef Wael
author_browse AbdelMoneim, Youssef Wael
author_facet AbdelMoneim, Youssef Wael
author_sort AbdelMoneim, Youssef Wael
collection Thesis
description In this thesis, a computational framework is proposed for optimizing the aerodynamic shape of bluff bodies used in galloping-based wind energy harvesters. The system targets low-wind speed environments, where normal wind turbines are not effective, offering a potential alternative to batteries used for powering small electronic devices such as wireless sensors. The design relies on the galloping effect, where airflow around a bluff body induces transverse oscillations that drive an energy conversion mechanism. To generate efficient bluff body geometry, the Class-Shape Transformation (CST) method is used to define a wide range of candidate shapes with minimal design parameters. These shapes are evaluated using Direct Operating Points and Panel methods, simulations to analyze flow behavior and aerodynamic performance (lift and Drag). The synthesis of the bluff body geometry would start with CST functions which is a constructive method for building Bluff Bodies then a Genetic Algorithm (GA) is used to perform global shape optimization. This approach aims to enhance energy output by identifying bluff body shapes that promote favorable galloping behavior. Experimental runs would be run to compare the energy output of conventional bluff bodies to the CST defined ones on a piezoelectric energy harvester.
format Thesis
id oai:fount.aucegypt.edu:etds-3845
institution American University in Cairo (Egypt)
last_indexed 2026-06-10T12:36:04.810Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from AUC Knowledge Fountain — bepress
publishDate 2026
publishDateRange 2026
publishDateSort 2026
publisher AUC Knowledge Fountain
publisherStr AUC Knowledge Fountain
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source_str AUC Knowledge Fountain — bepress
spelling oai:fount.aucegypt.edu:etds-3845 Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations AbdelMoneim, Youssef Wael In this thesis, a computational framework is proposed for optimizing the aerodynamic shape of bluff bodies used in galloping-based wind energy harvesters. The system targets low-wind speed environments, where normal wind turbines are not effective, offering a potential alternative to batteries used for powering small electronic devices such as wireless sensors. The design relies on the galloping effect, where airflow around a bluff body induces transverse oscillations that drive an energy conversion mechanism. To generate efficient bluff body geometry, the Class-Shape Transformation (CST) method is used to define a wide range of candidate shapes with minimal design parameters. These shapes are evaluated using Direct Operating Points and Panel methods, simulations to analyze flow behavior and aerodynamic performance (lift and Drag). The synthesis of the bluff body geometry would start with CST functions which is a constructive method for building Bluff Bodies then a Genetic Algorithm (GA) is used to perform global shape optimization. This approach aims to enhance energy output by identifying bluff body shapes that promote favorable galloping behavior. Experimental runs would be run to compare the energy output of conventional bluff bodies to the CST defined ones on a piezoelectric energy harvester. 2026-06-01T07:00:00Z thesis application/pdf https://fount.aucegypt.edu/etds/2783 https://fount.aucegypt.edu/context/etds/article/3845/viewcontent/youssef_wael_thesis.pdf Theses and Dissertations AUC Knowledge Fountain Energy Harvesting Wind Induced Vibrations CST Genetic Algorithms Aerodynamics and Fluid Mechanics Energy Systems Systems Engineering and Multidisciplinary Design Optimization
spellingShingle Energy Harvesting
Wind Induced Vibrations
CST
Genetic Algorithms
Aerodynamics and Fluid Mechanics
Energy Systems
Systems Engineering and Multidisciplinary Design Optimization
AbdelMoneim, Youssef Wael
Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations
title Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations
title_full Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations
title_fullStr Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations
title_full_unstemmed Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations
title_short Design and Optimization of a Bluff Body for Energy Harvesting of Transverse Galloping Induced by Low-Speed Wind Using Bernstein Polynomial Equations
title_sort design and optimization of a bluff body for energy harvesting of transverse galloping induced by low speed wind using bernstein polynomial equations
topic Energy Harvesting
Wind Induced Vibrations
CST
Genetic Algorithms
Aerodynamics and Fluid Mechanics
Energy Systems
Systems Engineering and Multidisciplinary Design Optimization
url https://fount.aucegypt.edu/etds/2783
https://fount.aucegypt.edu/context/etds/article/3845/viewcontent/youssef_wael_thesis.pdf
work_keys_str_mv AT abdelmoneimyoussefwael designandoptimizationofabluffbodyforenergyharvestingoftransversegallopinginducedbylowspeedwindusingbernsteinpolynomialequations