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首页> 外文期刊>Astronomy and astrophysics >An in-depth spectroscopic examination of molecular bands from 3D hydrodynamical model atmospheres - I. Formation of the G-band in metal-poor dwarf stars
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An in-depth spectroscopic examination of molecular bands from 3D hydrodynamical model atmospheres - I. Formation of the G-band in metal-poor dwarf stars

机译:对3D流体动力学模型大气中的分子带进行深入的光谱学检查-I.贫金属矮星中G带的形成

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Context. Recent developments in the three-dimensional (3D) spectral synthesis code Linfor3D have meant that for the first time, large spectral wavelength regions, such as molecular bands, can be synthesised with it in a short amount of time. Aims. A detailed spectral analysis of the synthetic G -band for several dwarf turn-off-type 3D atmospheres ( 5850 ? T _(eff) [ K ] ? 6550 , 4.0 ≤ log? g ≤ 4.5 , ? 3.0 ≤ [Fe/H] ≤?1.0 ) was conducted, under the assumption of local thermodynamic equilibrium. We also examine carbon and oxygen molecule formation at various metallicity regimes and discuss the impact it has on the G -band. Methods. Using a qualitative approach, we describe the different behaviours between the 3D atmospheres and the traditional one-dimensional (1D) atmospheres and how the different physics involved inevitably leads to abundance corrections, which differ over varying metallicities. Spectra computed in 1D were fit to every 3D spectrum to determine the 3D abundance correction. Results. Early analysis revealed that the CH molecules that make up the G -band exhibited an oxygen abundance dependency; a higher oxygen abundance leads to weaker CH features. Nitrogen abundances showed zero impact to CH formation. The 3D corrections are also stronger at lower metallicity. Analysis of the 3D corrections to the G -band allows us to assign estimations of the 3D abundance correction to most dwarf stars presented in the literature. Conclusions. The 3D corrections suggest that A (C) in carbon-enhanced metal-poor (CEMP) stars with high A (C) would remain unchanged, but would decrease in CEMP stars with lower A (C) . It was found that the C/O ratio is an important parameter to the G -band in 3D. Additional testing confirmed that the C/O ratio is an equally important parameter for OH transitions under 3D. This presents a clear interrelation between the carbon and oxygen abundances in 3D atmospheres through their molecular species, which is not seen in 1D.
机译:上下文。三维(3D)光谱合成代码Linfor3D的最新发展意味着,首次可以在短时间内合成大光谱波长区域(例如分子带)。目的几种矮截止型3D大气(5850?T _(eff)[K]?6550,4.0≤log?g≤4.5,?3.0≤[Fe / H]的合成G带的详细光谱分析在局部热力学平衡的假设下进行≤1.0。我们还研究了在各种金属状态下碳和氧分子的形成,并讨论了其对G带的影响。方法。使用定性方法,我们描述了3D气氛和传统一维(1D)气氛之间的不同行为,以及所涉及的不同物理学如何不可避免地导致丰度校正,这些校正因金属含量的不同而不同。以1D计算的光谱适合每个3D光谱,以确定3D丰度校正。结果。早期分析表明,构成G带的CH分子表现出氧丰度依赖性。较高的氧丰度导致CH功能弱。氮丰度显示对CH形成的影响为零。 3D校正在较低金属性时也更强。对G波段的3D校正的分析使我们能够将3D丰度校正的估计分配给文献中提出的大多数矮星。结论。 3D校正表明,具有较高A(C)的碳增强金属贫乏(CEMP)恒星中的A(C)将保持不变,但具有较低A(C)的CEMP恒星中的A(C)将会减小。发现C / O比是3D中G带的重要参数。额外的测试证实,C / O比对于3D下OH过渡同样重要。这通过3D大气中的分子种类呈现了碳和氧丰度之间的明确相互关系,这在1D中是看不到的。

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