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The solar dynamo begins near the surface

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arxiv 2404.07740 v2 pith:P3LMEUPG submitted 2024-04-11 astro-ph.SR physics.flu-dynphysics.space-ph

classification astro-ph.SRphysics.flu-dynphysics.space-ph
keywords magneticdynamonear-surfaceinstabilityoscillationstorsionalestimatesfield
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The Sun's magnetic dynamo cycle features a distinct pattern: a propagating region of sunspot emergence appears around 30 degrees latitude and vanishes near the equator every 11 years. Moreover, longitudinal flows called "torsional oscillations" closely shadow sunspot migration, undoubtedly sharing a common cause. Contrary to theories suggesting deep origins for these phenomena, helioseismology pinpoints low-latitude torsional oscillations to the Sun's outer 5-10%, the "Near-Surface Shear Layer". Within this zone, inwardly increasing differential rotation coupled with a poloidal magnetic field strongly implicates the Magneto-Rotational Instability prominent in accretion-disk theory and observed in laboratory experiments. Together, these two facts prompt the general question: Is it possible that the solar dynamo is a near-surface instability? Here, we report strong affirmative evidence in stark contrast to traditional paradigms focusing on the deeper tachocline. Simple analytic estimates show that the near-surface magneto-rotational instability better explains the spatiotemporal scales of the torsional oscillations and inferred subsurface magnetic field amplitudes. State-of-the-art numerical simulations corroborate these estimates and, strikingly, reproduce hemispherical magnetic current helicity laws. The dynamo resulting from a well-understood near-surface phenomenon improves prospects for accurate predictions of full magnetic cycles and space weather, impacting Earth's electromagnetic infrastructure.

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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. Something new under the Sun: A magnetically driven CH/CN anti-correlation

    astro-ph.SR 2026-08 conditional novelty 6.0 of 10

    The solar magnetic cycle produces a CH/CN anti-correlation in the integrated solar spectrum, which the authors scale up to argue that surface magnetism could mimic globular cluster multi-population signatures.

  2. Comparative Periodogram Analysis of 22 Years of Super-Kamiokande Solar $^{8}\mathrm{B}$ Neutrino Data: Classical, Phase-Based, and Information Theoretic Methods

    astro-ph.HE 2026-07 conditional novelty 6.0 of 10

    Nine periodogram methods on 22 years of SK 8B data show the ~38.8 d signal is early-era only, reject ~24 d as seasonal, and limit any 11-year modulation to <0.2% of mean flux.

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