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dc.contributor.adviserManderico, Alejandro R.
dc.contributor.authorMercado, Jerico James D.
dc.contributor.authorPescasiosa, Anne Therese E.
dc.contributor.authorTao, Lorenz Daniel Janz E.
dc.contributor.authorTolinero, Jester D.
dc.contributor.authorVillaluna, Melchor Jr. L.
dc.date.accessioned2026-02-05T03:35:54Z
dc.date.available2026-02-05T03:35:54Z
dc.date.issued2025-05-31
dc.identifier.citationMercado, J. J. D., Pescasiosa, A. T. E., Tao, L. D. J. E., Tolinero, J. D., & Villaluna, M. J. L. (2025). Design, fabrication, and testing of a savonius wind turbine with helical blades [Unpublished bachelor's special paper]. Central Philippine University.en_US
dc.identifier.urihttps://hdl.handle.net/20.500.12852/3643
dc.descriptionAbstract onlyen_US
dc.description.abstractThis study focused on the design, fabrication, and performance evaluation of a helical-bladed Savonius vertical axis wind turbine (VAWT) intended for small-scale and decentralized energy applications. To improve upon the limitations of conventional Savonius turbines—specifically low efficiency and poor self-starting performance—a 90-degree blade twist, an overlap ratio of 0.08, and circular end plates with a 1.1 diameter ratio were incorporated into the design. The turbine components were fabricated using polylactic acid (PLA) via 3D printing, then reinforced with epoxy resin for improved strength and durability. This approach enabled rapid, low-cost prototyping of complex blade geometries. Performance testing was conducted in a wind tunnel across wind speeds ranging from 6 to 10 m/s, using a rope brake system to simulate mechanical loading. Key performance metrics—including rotational speed, torque, tip speed ratio (TSR), and power coefficient (Cp)—were measured. The turbine achieved its highest efficiency at a corrected wind speed of 3.0 m/s (9 m/s tunnel speed), reaching a peak Cp of 0.232 at a TSR of 1.798. This exceeded the Cp value of 0.21 reported in prior studies, despite operating at a lower wind speed. The results demonstrate the effectiveness of helical blade modifications and additive manufacturing in enhancing the performance of VAWTs. The study highlights the turbine’s suitability for low-wind and off-grid environments, contributing to the advancement of accessible, sustainable wind energy technologies.en_US
dc.format.extentiv, 62 leavesen_US
dc.language.isoen_USen_US
dc.publisherCentral Philippine Universityen_US
dc.subject.lccTJ 159.5 .M47 2025en_US
dc.subject.lcshVertical axis wind turbinesen_US
dc.subject.lcshWind turbines--Aerodynamicsen_US
dc.subject.lcshWind turbines--Design and constructionen_US
dc.subject.lcshThree-dimensional printingen_US
dc.subject.lcshWind tunnels--Testingen_US
dc.subject.lcshPolylactic aciden_US
dc.subject.lcshEpoxy resinsen_US
dc.subject.lcshRotorsen_US
dc.subject.lcshRenewable energy sourcesen_US
dc.titleDesign, fabrication, and testing of a savonius wind turbine with helical bladesen_US
dc.typeSpecial paperen_US
dcterms.accessRightsLimited public accessen_US
dc.description.bibliographicalreferencesIncludes bibliographical referencesen_US
dc.contributor.committeememberMinerva, Brian Ray D.
dc.contributor.committeememberTobias, Kleio Alfric S.
dc.contributor.committeememberFernandez, Glenn V.
dc.contributor.departmentCollege of Engineeringen_US
dc.description.degreeBachelor of Science in Mechanical Engineeringen_US


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