Detailed seismic study of Gemma (KIC11026764) using EGGMiMoSA

IF 5.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
M. Farnir, M.-A. Dupret, G. Buldgen
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引用次数: 0

Abstract

Context. When leaving the main sequence (MS) for the red-giant branch (RGB), subgiant stars undergo fast structural changes. Consequently, their observed oscillation spectra mirror these changes, constituting key tracers of stellar structure and evolution. However, the complexity of their spectra makes their modelling an arduous task, which few authors have undertaken. Gemma (KIC11026764) is a young subgiant with 45 precise oscillation modes observed with Kepler, making it the ideal benchmark for seismic modelling.Aims. This study is aimed at modelling the subgiant Gemma, taking advantage of most of the precise seismic information available. This approach enables us to pave the way for the seismic modelling of evolved solar-like stars and provide the relevant insights into their structural evolution.Methods. Using our Levenberg-Marquardt stellar modelling tool, we built a family of models representative of Gemma’s measured seismic indicators obtained via our seismic tool, EGGMiMoSA. We studied the structural information these indicators hold by carefully varying stellar parameters. We also complemented the characterisation with information held by who indicators and non-seismic data.Results. From the extensive set of models we built and using most of the seismic information at hand, including two  = 1 and one  = 2 mixed modes, we were able to probe the chemical transition at the hydrogen-burning shell. Indeed, we have demonstrated that among our models, only the ones with the sharpest chemical gradient are able to reproduce all the seismic information considered. One possibility to account for such a gradient is the inclusion of a significant amount of overshooting, namely αov = 0.17, which is unexpected for low-mass stars such as Gemma (expected mass of about 1.15 M).
背景。当离开主序(MS)进入红巨星分支(RGB)时,亚巨星会发生快速的结构变化。因此,它们观测到的振荡光谱反映了这些变化,是恒星结构和演化的关键示踪剂。然而,由于其光谱的复杂性,对其进行建模是一项艰巨的任务,很少有学者能够完成这项任务。Gemma(KIC11026764)是一颗年轻的亚巨星,开普勒观测到它有 45 种精确的振荡模式,这使它成为地震建模的理想基准。这项研究的目的是利用现有的大部分精确地震信息,对亚巨星 Gemma 进行建模。这种方法使我们能够为类似太阳的演化恒星的地震建模铺平道路,并为它们的结构演化提供相关见解。利用我们的莱文伯格-马夸特恒星建模工具,我们建立了一系列模型,这些模型代表了通过我们的地震工具EGGMiMoSA获得的Gemma测量地震指标。我们通过仔细改变恒星参数来研究这些指标所包含的结构信息。我们还利用其他指标和非地震数据所包含的信息对特征进行了补充。从我们建立的大量模型中,并利用手头的大部分地震信息,包括两个 ℓ = 1 和一个 ℓ = 2 混合模式,我们能够探测到氢燃烧壳的化学转变。事实上,我们已经证明,在我们的模型中,只有化学梯度最明显的模型才能重现所有的地震信息。解释这种梯度的一种可能性是加入了大量的过冲,即 αov = 0.17,这对于像 Gemma 这样的低质量恒星(预期质量约为 1.15 M⊙)来说是出乎意料的。
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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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