Quasi-biennial variations in helioseismic frequencies: can the source of the variation be localized?

Anne-Marie Broomhall, William Chaplin, Yvonne Elsworth, R Simoniello

Research output: Contribution to journalArticle

32 Citations (Scopus)

Abstract

We investigate the spherical harmonic degree (l) dependence of the 'seismic' quasi-biennial oscillation (QBO) observed in low-degree solar p-mode frequencies, using Sun-as-a-star Birmingham Solar Oscillations Network data. The amplitude of the seismic QBO is modulated by the 11-yr solar cycle, with the amplitude of the signal being largest at solar maximum. The amplitude of the signal is noticeably larger for the l= 2 and 3 modes than for the l= 0 and 1 modes. The seismic QBO shows some frequency dependence but this dependence is not as strong as observed in the 11-yr solar cycle. These results are consistent with the seismic QBO having its origins in shallow layers of the interior (one possibility being the bottom of the shear layer extending 5 per cent below the solar surface). Under this scenario the magnetic flux responsible for the seismic QBO is brought to the surface (where its influence on the p modes is stronger) by buoyant flux from the 11-yr cycle, the strong component of which is observed at predominantly low latitudes. As the l= 2 and 3 modes are much more sensitive to equatorial latitudes than the l= 0 and 1 modes the influence of the 11-yr cycle on the seismic QBO is more visible in l= 2 and 3 mode frequencies. Our results imply that close to solar maximum the main influence of the seismic QBO occurs at low latitudes (
Original languageEnglish
Pages (from-to)no-no
JournalRoyal Astronomical Society. Monthly Notices
DOIs
Publication statusPublished - 1 Dec 2011

Keywords

  • Sun: oscillations
  • Sun: helioseismology
  • methods: data analysis

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