Quantitative Scaling of Magnetic Avalanches

dc.contributor.authorDurin, Gianfranco
dc.contributor.authorBohn, Felipe
dc.contributor.authorCorrêa, Marcio Assolin
dc.contributor.authorSommer, Rubem Luis
dc.contributor.authorDoussal, P. Le
dc.contributor.authorWiese, K. J.
dc.date.accessioned2021-11-26T14:47:47Z
dc.date.available2021-11-26T14:47:47Z
dc.date.issued2016-08-15
dc.description.abstractWe provide the first quantitative comparison between Barkhausen noise experiments and recent predictions from the theory of avalanches for pinned interfaces, both in and beyond mean field. We study different classes of soft magnetic materials, including polycrystals and amorphous samples—which are characterized by long-range and short-range elasticity, respectively—both for thick and thin samples, i.e., with and without eddy currents. The temporal avalanche shape at fixed size as well as observables related to the joint distribution of sizes and durations are analyzed in detail. Both long-range and short-range samples with no eddy currents are fitted extremely well by the theoretical predictions. In particular, the short-range samples provide the first reliable test of the theory beyond mean field. The thick samples show systematic deviations from the scaling theory, providing unambiguous signatures for the presence of eddy currentspt_BR
dc.description.resumoWe provide the first quantitative comparison between Barkhausen noise experiments and recent predictions from the theory of avalanches for pinned interfaces, both in and beyond mean field. We study different classes of soft magnetic materials, including polycrystals and amorphous samples—which are characterized by long-range and short-range elasticity, respectively—both for thick and thin samples, i.e., with and without eddy currents. The temporal avalanche shape at fixed size as well as observables related to the joint distribution of sizes and durations are analyzed in detail. Both long-range and short-range samples with no eddy currents are fitted extremely well by the theoretical predictions. In particular, the short-range samples provide the first reliable test of the theory beyond mean field. The thick samples show systematic deviations from the scaling theory, providing unambiguous signatures for the presence of eddy currentspt_BR
dc.identifier.citationDURIN, Gianfranco; BOHN, Felipe; CORRÊA, Marcio Assolin; SOMMER, Rubem Luis; DOUSSAL, P. Le; WIESE, K. J.. Quantitative Scaling of Magnetic Avalanches. Physical Review Letters, [S.l.], v. 117, n. 8, p. 087201/1-087201/5, 15 ago. 2016. American Physical Society (APS). Disponível em: https://journals.aps.org/prl/abstract/10.1103/PhysRevLett.117.087201. Acesso em: 31 mai. 2020. DOI: http://dx.doi.org/10.1103/physrevlett.117.087201.pt_BR
dc.identifier.issn1079-7114
dc.identifier.issn0031-9007
dc.identifier.urihttps://repositorio.ufrn.br/handle/123456789/45040
dc.languageenpt_BR
dc.publisherAmerican Physical Societypt_BR
dc.subjectGranular avalanchespt_BR
dc.subjectMagnetic domainspt_BR
dc.subjectFluctuations & noisept_BR
dc.titleQuantitative Scaling of Magnetic Avalanchespt_BR
dc.typearticlept_BR

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