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A basal contribution from p-modes to the Alfv\'enic wave flux in the Sun's corona

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arxiv 1902.03811 v1 pith:2JV3UYXR submitted 2019-02-11 astro-ph.SR

classification astro-ph.SR
keywords alfvenicfluxwavesbasalcoronaenergyfields
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Many cool stars possess complex magnetic fields [1] that are considered to undertake a central role in the structuring and energising of their atmospheres [2]. Alfv\'enic waves are thought to make a critical contribution to energy transfer along these magnetic fields, with the potential to heat plasma and accelerate stellar winds [3] [4] [5]. Despite Alfv\'enic waves having been identified in the Sun's atmosphere, the nature of the basal wave energy flux is poorly understood. It is generally assumed that the associated Poynting flux is generated solely in the photosphere and propagates into the corona, typically through the continuous buffeting of magnetic fields by turbulent convective cells [4] [6] [7]. Here we provide evidence that the Sun's internal acoustic modes also contribute to the basal flux of Alfv\'enic waves, delivering a spatially ubiquitous input to the coronal energy balance that is sustained over the solar cycle. Alfv\'enic waves are thus a fundamental feature of the Sun's corona. Acknowledging that internal acoustic modes have a key role in injecting additional Poynting flux into the upper atmospheres of Sun-like stars has potentially significant consequences for the modelling of stellar coronae and winds.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Signatures of photospheric convection throughout the solar atmosphere: the EVE Sun-as-a-star mHz continuum

    astro-ph.SR 2026-07 conditional novelty 7.0 of 10

    EVE Sun-as-a-star Doppler spectra of 26 EUV lines reveal Harvey-like convective continua to 50 mHz, reduced granulation power in coronal lines, ~15 km/s nonthermal RMS, and no Kolmogorov turbulence.

  2. Numerical simulations of waves and turbulence in coronal loops: observables and spectra

    physics.plasm-ph 2026-05 unverdicted novelty 5.0 of 10

    Simulations show MUSE-resolution intensity spectra can infer the density fluctuation spectrum inside coronal loops.

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