Spatially resolved measurements of the solar photospheric oxygen abundance

被引:5
|
作者
Cubas Armas, M. [1 ,2 ]
Asensio Ramos, A. [1 ,2 ]
Socas-Navarro, H. [1 ,2 ]
机构
[1] Inst Astrofis Canarias IAC, Avda Via Lactea S-N, Tenerife 38200, Spain
[2] Univ La Laguna, Dept Astrofis, Tenerife 38205, Spain
关键词
Sun; abundances; atmosphere; photosphere; methods; statistical; ADAPTIVE OPTICS; LINE FORMATION; O I; GRANULATION;
D O I
10.1051/0004-6361/202037849
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Aims. We report the results of a novel determination of the solar oxygen abundance using spatially resolved observations and inversions. We seek to derive the photospheric solar oxygen abundance with a method that is robust against uncertainties in the model atmosphere. Methods. We use observations with spatial resolution obtained at the Vacuum Tower Telescope to derive the oxygen abundance at 40 different spatial positions in granules and intergranular lanes. We first obtain a model for each location by inverting the FeI lines with the NICOLE inversion code. These models are then integrated into a hierarchical Bayesian model that is used to infer the most probable value for the oxygen abundance that is compatible with all the observations. The abundance is derived from the [OI] forbidden line at 6300 angstrom taking into consideration all possible nuisance parameters that can affect the abundance. Results. Our results show good agreement in the inferred oxygen abundance for all the pixels analyzed, demonstrating the robustness of the analysis against possible systematic errors in the model. We find a slightly higher oxygen abundance in granules than in intergranular lanes when treated separately (log(epsilon(O)) = 8.83 +/- 0.02 vs. log(epsilon(O)) = 8.76 +/- 0.02), which is a difference of approximately 2-sigma. This tension suggests that some systematic errors in the model or the radiative transfer still exist but are small. When taking all pixels together, we obtain an oxygen abundance of log(epsilon(O)) = 8.80 +/- 0.03, which is compatible with both granules and lanes within 1-sigma. The spread of results is due to both systematic and random errors.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Spatially resolved measurements of the solar photospheric oxygen abundance
    Cubas Armas, M.
    Asensio Ramos, A.
    Socas-Navarro, H.
    [J]. Astronomy and Astrophysics, 2020, 643
  • [2] Uncertainties in the solar photospheric oxygen abundance
    Cubas Armas, M.
    Asensio Ramos, A.
    Socas-Navarro, H.
    [J]. Astronomy and Astrophysics, 2017, 600
  • [3] Uncertainties in the solar photospheric oxygen abundance
    Cubas Armas, M.
    Asensio Ramos, A.
    Socas-Navarro, H.
    [J]. ASTRONOMY & ASTROPHYSICS, 2017, 600
  • [4] SOLAR PHOTOSPHERIC ABUNDANCE OF IRIDIUM
    YOUSSEF, NH
    KHALIL, NM
    [J]. ASTRONOMY & ASTROPHYSICS, 1988, 203 (02) : 378 - 380
  • [5] The solar photospheric abundance of zirconium
    Caffau, E.
    Faraggiana, R.
    Ludwig, H-G
    Bonifacio, P.
    Steffen, Andm.
    [J]. ASTRONOMISCHE NACHRICHTEN, 2011, 332 (02) : 128 - 139
  • [6] SOLAR PHOTOSPHERIC ABUNDANCE OF IRON
    BIEMONT, E
    GREVESSE, N
    [J]. SOLAR PHYSICS, 1975, 45 (01) : 59 - 68
  • [7] 3D model atmospheres and the solar photospheric oxygen abundance
    Caffau, E.
    Ludwig, H. -G.
    [J]. ART OF MODELLING STARS IN THE 21ST CENTURY, 2008, (252): : 35 - 39
  • [8] The solar photospheric abundance of hafnium and thorium
    Caffau, E.
    Sbordone, L.
    Ludwig, H. -G.
    Bonifacio, P.
    Steffen, M.
    Behara, N. T.
    [J]. ASTRONOMY & ASTROPHYSICS, 2008, 483 (02) : 591 - 598
  • [9] The solar abundance of iron and the photospheric model
    Grevesse, N
    Sauval, AJ
    [J]. ASTRONOMY & ASTROPHYSICS, 1999, 347 (01) : 348 - 354
  • [10] A determination of the solar photospheric boron abundance
    Cunha, K
    Smith, VV
    [J]. ASTROPHYSICAL JOURNAL, 1999, 512 (02): : 1006 - 1013