<p>The transport of chemical elements in stellar interiors is one of the greatest sources of uncertainties of solar and stellar modelling. The Sun, with its exquisite spectroscopic, helioseismic and neutrino observations, offers a prime environment to test the prescriptions used for both microscopic and macroscopic transport processes. We study in detail the impact of various formalisms for atomic diffusion on helioseismic constraints in both CLES (Scuflaire et&#xa0;al. <CitationRef CitationID="CR94">2008a</CitationRef>) and Cesam2k20 (Morel and Lebreton <CitationRef CitationID="CR75">2008</CitationRef>; Marques et&#xa0;al. <CitationRef CitationID="CR68">2013</CitationRef>; Deal et&#xa0;al. <CitationRef CitationID="CR38">2018</CitationRef>) models and compare both codes in detail. Moreover, due to the inability of standard models using microscopic diffusion to reproduce light element depletion in the Sun (Li, Be), another efficient process must be included to reproduce these constraints (rotation-induced: Eggenberger et&#xa0;al. <CitationRef CitationID="CR42">2022</CitationRef>, overshooting -or penetrative convection- below the convective envelope: Thévenin et&#xa0;al. <CitationRef CitationID="CR103">2017</CitationRef>, or ad hoc turbulence: Lebreton and Maeder <CitationRef CitationID="CR59">1987</CitationRef>; Richer, Michaud, and Turcotte <CitationRef CitationID="CR86">2000</CitationRef>). However, introducing such an extra mixing leads to issues with the CNO neutrino fluxes (see Buldgen et&#xa0;al. <CitationRef CitationID="CR23">2023</CitationRef>), which seem to be systematically lower than the Borexino observations (Appel et&#xa0;al. <CitationRef CitationID="CR4">2022</CitationRef>). Another key aspect to consider when reconciling models with neutrino fluxes is the impact of electronic screening (Mussack and Däppen <CitationRef CitationID="CR76">2011</CitationRef>).</p>

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The Impact of the Transport of Chemicals and Electronic Screening on Helioseismic and Neutrino Observations in Solar Models

  • Morgan Deal,
  • Gaël Buldgen,
  • Louis Manchon,
  • Yveline Lebreton,
  • Arlette Noels,
  • Richard Scuflaire

摘要

The transport of chemical elements in stellar interiors is one of the greatest sources of uncertainties of solar and stellar modelling. The Sun, with its exquisite spectroscopic, helioseismic and neutrino observations, offers a prime environment to test the prescriptions used for both microscopic and macroscopic transport processes. We study in detail the impact of various formalisms for atomic diffusion on helioseismic constraints in both CLES (Scuflaire et al. 2008a) and Cesam2k20 (Morel and Lebreton 2008; Marques et al. 2013; Deal et al. 2018) models and compare both codes in detail. Moreover, due to the inability of standard models using microscopic diffusion to reproduce light element depletion in the Sun (Li, Be), another efficient process must be included to reproduce these constraints (rotation-induced: Eggenberger et al. 2022, overshooting -or penetrative convection- below the convective envelope: Thévenin et al. 2017, or ad hoc turbulence: Lebreton and Maeder 1987; Richer, Michaud, and Turcotte 2000). However, introducing such an extra mixing leads to issues with the CNO neutrino fluxes (see Buldgen et al. 2023), which seem to be systematically lower than the Borexino observations (Appel et al. 2022). Another key aspect to consider when reconciling models with neutrino fluxes is the impact of electronic screening (Mussack and Däppen 2011).