DC FieldValueLanguage
dc.contributor.authorSteinhoff, Leon-
dc.contributor.authorKoschlik, Ann-Kathrin-
dc.contributor.authorGomez, Maria Soria-
dc.contributor.authorArts, Emy-
dc.contributor.authorKunz, Veit Dominik-
dc.contributor.authorRaddatz, Florian-
dc.contributor.authorWende, Gerko-
dc.date.accessioned2024-03-19T12:58:15Z-
dc.date.available2024-03-19T12:58:15Z-
dc.date.issued2023-03-06-
dc.identifier.urihttp://hdl.handle.net/20.500.12738/15275-
dc.description.abstractThe number of applications of drones or unmanned aircraft systems (UAS) has rapidly increased over the last years. The widespread commercial use of UAS and their reliable and safe operation requires novel maintenance, repair and overhaul (MRO) schemes.Most commercial UAS consist of multiple rotary propellers, which are prone to damage, wear and tear. Propeller blade damage can cause increased mechanical stress on UAS components, performance degradation and decreased stability. Acoustic camera measurements of partially damaged blades show higher sound pressure levels (SPL) at the blade tips and an individual frequency response.With the rotating propellers being the main source of emitted sound, an acoustic detection system is proposed to identify damaged propeller blades without the need to intervene in the UAS’s hardware or software and seamlessly integrate the inspection with the UAS operation. To isolate the acoustic signature of the individual propeller blades and reduce parasitic environmental noise, an acoustic camera (CAE Systems Bionics M112) is used. The output data of the microphone array is processed using beamforming algorithms to isolate the individual propeller sound. In the following step, the data is processed by a neural network, which is trained to diagnose the propeller’s health state.en
dc.description.sponsorshipBundesministerium für Wirtschaft und Klimaschutzen_US
dc.language.isoenen_US
dc.publisherDeutsches Zentrum für Luft- und Raumfahrten_US
dc.subjectUAVen_US
dc.subjectPropelleren_US
dc.subjectNoiseen_US
dc.subject.ddc620: Ingenieurwissenschaftenen_US
dc.titleFrom sound to vision : applying beamforming to reduce parasitic noise for fault detectionen
dc.typePosteren_US
dc.relation.conferenceJahrestagung für Akustik 2023en_US
dc.description.versionAlternativeRevieweden_US
local.contributorCorporate.editorDeutsches Zentrum für Luft- und Raumfahrt-
tuhh.oai.showtrueen_US
tuhh.publication.instituteFakultät Life Sciencesen_US
tuhh.publication.instituteDepartment Verfahrenstechniken_US
tuhh.publication.instituteForschungs- und Transferzentrum Technische Akustiken_US
tuhh.publication.instituteCompetence Center Erneuerbare Energien und Energieeffizienzen_US
tuhh.publisher.urlhttps://elib.dlr.de/201099/1/23_03_15%20DAGA%20Poster%20v10.pdf-
tuhh.type.opusPoster-
dc.relation.projectMobile Erfassung von Fledermäusen bei On-Shore Windenergieanlagen durch autonome Messdrohnen Teilprojekt: Friendly Dronesen_US
dc.type.casraiConference Poster-
dc.type.diniOther-
dc.type.driverother-
dc.type.statusinfo:eu-repo/semantics/publishedVersionen_US
dcterms.DCMITypeImage-
item.creatorGNDSteinhoff, Leon-
item.creatorGNDKoschlik, Ann-Kathrin-
item.creatorGNDGomez, Maria Soria-
item.creatorGNDArts, Emy-
item.creatorGNDKunz, Veit Dominik-
item.creatorGNDRaddatz, Florian-
item.creatorGNDWende, Gerko-
item.languageiso639-1en-
item.cerifentitytypePublications-
item.openairecristypehttp://purl.org/coar/resource_type/c_6670-
item.creatorOrcidSteinhoff, Leon-
item.creatorOrcidKoschlik, Ann-Kathrin-
item.creatorOrcidGomez, Maria Soria-
item.creatorOrcidArts, Emy-
item.creatorOrcidKunz, Veit Dominik-
item.creatorOrcidRaddatz, Florian-
item.creatorOrcidWende, Gerko-
item.fulltextNo Fulltext-
item.grantfulltextnone-
item.openairetypePoster-
crisitem.author.deptDepartment Verfahrenstechnik-
crisitem.author.parentorgFakultät Life Sciences-
crisitem.project.funderBundesministerium für Wirtschaft und Klimaschutz-
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