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A scaling relationship for non-thermal radio emission from ordered magnetospheres: From the top of the main sequence to planets

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dc.contributor.author Leto P.
dc.contributor.author Trigilio C.
dc.contributor.author Krtička J.
dc.contributor.author Fossati L.
dc.contributor.author Ignace R.
dc.contributor.author Shultz M.E.
dc.contributor.author Buemi C.S.
dc.contributor.author Cerrigone L.
dc.contributor.author Umana G.
dc.contributor.author Ingallinera A.
dc.contributor.author Bordiu C.
dc.contributor.author Pillitteri I.
dc.contributor.author Bufano F.
dc.contributor.author Oskinova L.M.
dc.contributor.author Agliozzo C.
dc.contributor.author Cavallaro F.
dc.contributor.author Riggi S.
dc.contributor.author Loru S.
dc.contributor.author Todt H.
dc.contributor.author Giarrusso M.
dc.contributor.author Phillips N.M.
dc.contributor.author Robrade J.
dc.contributor.author Leone F.
dc.date.accessioned 2022-02-09T20:31:59Z
dc.date.available 2022-02-09T20:31:59Z
dc.date.issued 2021
dc.identifier.issn 0035-8711
dc.identifier.uri https://dspace.kpfu.ru/xmlui/handle/net/168807
dc.description.abstract In this paper, we present the analysis of incoherent non-thermal radio emission from a sample of hot magnetic stars, ranging from early-B to early-A spectral type. Spanning a wide range of stellar parameters and wind properties, these stars display a commonality in their radio emission which presents new challenges to the wind scenario as originally conceived. It was thought that relativistic electrons, responsible for the radio emission, originate in current sheets formed, where the wind opens the magnetic field lines. However, the true mass-loss rates from the cooler stars are too small to explain the observed non-thermal broad-band radio spectra. Instead, we suggest the existence of a radiation belt located inside the inner magnetosphere, similar to that of Jupiter. Such a structure explains the overall indifference of the broad-band radio emissions on wind mass-loss rates. Further, correlating the radio luminosities from a larger sample of magnetic stars with their stellar parameters, the combined roles of rotation and magnetic properties have been empirically determined. Finally, our sample of early-type magnetic stars suggests a scaling relationship between the non-thermal radio luminosity and the electric voltage induced by the magnetosphere's co-rotation, which appears to hold for a broader range of stellar types with dipole-dominated magnetospheres (like the cases of the planet Jupiter and the ultracool dwarf stars and brown dwarfs). We conclude that well-ordered and stable rotating magnetospheres share a common physical mechanism for supporting the generation of non-thermal electrons.
dc.relation.ispartofseries Monthly Notices of the Royal Astronomical Society
dc.subject magnetic reconnection
dc.subject planets and satellites: magnetic fields
dc.subject radio continuum: stars
dc.subject stars: early-type
dc.subject stars: late-type
dc.subject stars: magnetic field
dc.title A scaling relationship for non-thermal radio emission from ordered magnetospheres: From the top of the main sequence to planets
dc.type Article
dc.relation.ispartofseries-issue 2
dc.relation.ispartofseries-volume 507
dc.collection Публикации сотрудников КФУ
dc.relation.startpage 1979
dc.source.id SCOPUS00358711-2021-507-2-SID85115436622


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  • Публикации сотрудников КФУ Scopus [24551]
    Коллекция содержит публикации сотрудников Казанского федерального (до 2010 года Казанского государственного) университета, проиндексированные в БД Scopus, начиная с 1970г.

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