Constraints on the properties of macroscopic transport in the Sun from combined lithium and beryllium depletion

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Astronomy & Astrophysics Pub Date : 2025-02-20 DOI:10.1051/0004-6361/202452918
G. Buldgen, A. Noels, A. M. Amarsi, D. Nandal, C. Pezzotti, R. Scuflaire, M. Deal, N. Grevesse
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Abstract

Context. The Sun is a privileged laboratory of stellar evolution, thanks to the quality and complementary nature of available constraints. Using these observations, we are able to draw a detailed picture of its internal structure and dynamics, which forms the basis of the successes of solar modelling. Amongst such observations, constraints on the depletion of lithium and beryllium are key tracers of the required efficiency and extent of macroscopic mixing just below the solar convective envelope. Thanks to revised determinations of these abundances, we may use them in conjunction with other existing spectroscopic and helioseismic constraints to study in detail the properties of macroscopic transport.Aims. We aim to constrain the efficiency of macroscopic transport at the base of the solar convective zone (BCZ) and determining the compatibility of the observations with a suggested candidate linked with the transport of angular momentum in the solar radiative interior.Methods. We use recent spectroscopic observations of lithium and beryllium abundance and include them in solar evolutionary model calibrations. We test the agreement of such models in terms of position of the convective envelope, helium mass fraction in the convective zone, sound speed profile inversions, and neutrino fluxes.Results.We constrain the required efficiency and extent of the macroscopic mixing at the base of the BCZ, finding that a power-law density with an index, n, between 3 and 6 would reproduce the data, with efficiencies at the BCZ of about 6000 cm2/s, depending on the value of n. We also confirm that macroscopic mixing worsens the agreement with neutrino fluxes and that the current implementations of the magnetic Tayler instability are unable to explain the observations.
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锂铍复合耗竭对太阳宏观输运性质的约束
上下文。由于现有约束条件的质量和互补性,太阳是恒星演化的特权实验室。利用这些观测,我们能够绘制出其内部结构和动力学的详细图像,这构成了太阳模型成功的基础。在这些观测中,锂和铍消耗的限制是太阳对流包线以下宏观混合所需效率和程度的关键示踪。由于修正了这些丰度的测定,我们可以将它们与其他现有的光谱和日震约束结合使用,以详细研究宏观输运的性质。我们的目标是约束太阳对流区(BCZ)底部宏观输运的效率,并确定观测结果与太阳辐射内部角动量输运相关的建议候选者的兼容性。我们利用最近对锂和铍丰度的光谱观测,并将它们纳入太阳演化模型校准中。我们从对流包络层的位置、对流区的氦质量分数、声速剖面反转和中微子通量等方面检验了这些模型的一致性。结果:我们限制了BCZ底部宏观混合所需的效率和程度,发现指数n在3到6之间的幂律密度可以重现数据,在BCZ的效率约为6000 cm2/s。我们还证实,宏观混合恶化了与中微子通量的一致性,并且目前实现的磁泰勒不稳定性无法解释观测结果。
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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