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Cited 9 time in webofscience Cited 8 time in scopus
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Wire-based triboelectric resonator for a self-powered crack monitoring system

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dc.contributor.authorJung, Yeonseok-
dc.contributor.authorYu, Jiseop-
dc.contributor.authorHwang, Hee Jae-
dc.contributor.authorBhatia, Divij-
dc.contributor.authorChung, Kwun-Bum-
dc.contributor.authorChoi, Dukhyun-
dc.date.accessioned2023-04-27T23:40:41Z-
dc.date.available2023-04-27T23:40:41Z-
dc.date.issued2020-05-
dc.identifier.issn2211-2855-
dc.identifier.issn2211-3282-
dc.identifier.urihttps://scholarworks.dongguk.edu/handle/sw.dongguk/6669-
dc.description.abstractIn this study, we investigated a wire-type triboelectric resonator (WTER) for monitoring cracks. Vibration of a metal wire on a dielectric film produces a resonant frequency via triboelectric outputs. We found that the tension, linear density, and wire length significantly affect the resonant frequency measured by the WTER. For a 10-cm-long wire, the WTER's sensitivity, as defined by a resonant frequency change for an elongation (i.e., Hz/mm), reached approximately 1,020 Hz/mm; however, this changed to 115 Hz/mm after an elongation of 1.5 mm. When a 40-cm-long wire was used, the sensitivity changed to about 105 Hz/mm, but it was very stable because there was no plastic deformation. We developed a stand-alone, self-powered crack monitoring system by assembling a WTER with an Arduino board (A-WTER); this setup demonstrated monitored frequency value errors of less than 1%. Our A-WTER successfully monitored an elongation of 100 mu m with a resonant frequency change of approximately 30 Hz. We investigated the A-WTER behavior under varying humidity and temperature conditions in order to understand its environmental stability. We found it was highly stable through a broad humidity range (RH 10%-80%) while its thermal stability was controlled by changing the tension and length of the wire.-
dc.language영어-
dc.language.isoENG-
dc.publisherELSEVIER-
dc.titleWire-based triboelectric resonator for a self-powered crack monitoring system-
dc.typeArticle-
dc.publisher.location네델란드-
dc.identifier.doi10.1016/j.nanoen.2020.104615-
dc.identifier.scopusid2-s2.0-85079533584-
dc.identifier.wosid000530669500022-
dc.identifier.bibliographicCitationNANO ENERGY, v.71-
dc.citation.titleNANO ENERGY-
dc.citation.volume71-
dc.type.docTypeArticle-
dc.description.isOpenAccessN-
dc.description.journalRegisteredClassscie-
dc.description.journalRegisteredClassscopus-
dc.relation.journalResearchAreaChemistry-
dc.relation.journalResearchAreaScience & Technology - Other Topics-
dc.relation.journalResearchAreaMaterials Science-
dc.relation.journalResearchAreaPhysics-
dc.relation.journalWebOfScienceCategoryChemistry, Physical-
dc.relation.journalWebOfScienceCategoryNanoscience & Nanotechnology-
dc.relation.journalWebOfScienceCategoryMaterials Science, Multidisciplinary-
dc.relation.journalWebOfScienceCategoryPhysics, Applied-
dc.subject.keywordPlusSTRAIN SENSOR-
dc.subject.keywordPlusNANOGENERATORS-
dc.subject.keywordPlusTRANSPARENT-
dc.subject.keywordPlusPROPAGATION-
dc.subject.keywordPlusMECHANISMS-
dc.subject.keywordPlusENERGY-
dc.subject.keywordAuthorTriboelectric resonator-
dc.subject.keywordAuthorWire-
dc.subject.keywordAuthorResonant frequency-
dc.subject.keywordAuthorCrack-
dc.subject.keywordAuthorStability-
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