Impact of a radius and composition variation on the solar subsurface layers stratification
arXiv:0809.1726 · doi:10.1088/0004-637X/690/2/1272
Abstract
Several works have reported changes of the Sun's subsurface stratification inferred from f-mode or p-mode observations. Recently a non-homologous variation of the subsurface layers with depth and time has been deduced from f-modes. Progress on this important transition zone between the solar interior and the external part supposes a good understanding of the interplay between the different processes which contribute to this variation. This paper is the first of a series where we aim to study these layers from the theoretical point of view. For this first paper, we use solar models obtained with the CESAM code, in its classical form, and analyze the properties of the computed theoretical f-modes. We examine how a pure variation in the calibrated radius influences the subsurface structure and we show also the impact of an additional change of composition on the same layers. Then we use an inversion procedure to quantify the corresponding f-mode variation and their capacity to infer the radius variation. We deduce an estimate of the amplitude of the 11-year cyclic photospheric radius variation.
24 pages, 12 figures, accepted in ApJ
References in corpus (7)
- Transport and mixing in the radiation zones of rotating stars II. Axisymmetric magnetic field
- Solving the discrepancy between the seismic and photospheric solar radius
- Changes in the subsurface stratification of the Sun with the 11-year activity cycle
- Helioseismic test of non-homologous solar radius changes with the 11-year activity cycle
- The Non-Homologous Nature of Solar Diameter Variations
- Structure of the near-surface layers of the Sun: asphericity and time variation
- Variations of the Solar Acoustic High-Degree Mode Frequencies over Solar Cycle 23
Cited by in corpus (6)
- Seismic sensitivity to sub-surface solar activity from 18 years of GOLF/SoHO observations
- PICARD SODISM, a space telescope to study the Sun from the middle ultraviolet to the near infrared
- The Quasi-Biennial Periodicity (QBP) in velocity and intensity helioseismic observations
- Differential rotation of the chromosphere in the He I absorption line
- The role and contribution of magnetic fields, characterized via their magnetic flux, to the statistical structuring of the solar atmosphere
- Concluding remarks on Solar and Stellar Activities and related planets