Measurements of solar irradiance and effective temperature as a probe of solar interior magnetic fields
arXiv:astro-ph/0007203 · doi:10.1086/319470
Abstract
We argue that a variety of solar data suggest that the activity-cycle timescale variability of the total irradiance, is produced by structural adjustments of the solar interior. Assuming these adjustments are induced by variations of internal magnetic fields, we use measurements of the total irradiance and effective temperature over the period from 1978 to 1992, to infer the magnitude and location of the magnetic field. Using an updated stellar evolution model, which includes magnetic fields, we find that the observations can be explained by fields whose peak values range from 120k to 2.3k gauss, located in the convection zone between $0.959R_{\sun}$ and $0.997R_{\sun}$, respectively. The corresponding maximal radius changes, are 17 km when the magnetic field is located at $0.959R_{\sun}$ and 3 km when it is located at $0.997R_{\sun}$. At these depths, the parameter(defined by , where and are the radius and luminosity) ranges from 0.02 to 0.006. All these predictions are consistent with helioseismology and recent measurements carried out by the MDI experiment on SOHO.
8 pages, 8 figures, to appear in ApJ
Cited by in corpus (14)
- Inclusion of turbulence in solar modeling
- The Non-Homologous Nature of Solar Diameter Variations
- On Variation of the Latitudinal Structure of the Solar Convection Zone
- Solar variability and climate
- 2-D Stellar Evolution Code Including Arbitrary Magnetic Fields. I. Mathematical Techniques and Test Cases
- Laboratory modeling of jets from young stars using plasma focus facilities
- Long-term photometric behaviour of XZ Dra Binarity or magnetic cycle of a Blazhko type RRab star
- Solar models with new low-metal abundances
- Interpreting Helioseismic Structure Inversion Results of Solar Active Regions
- Two-Dimensional Stellar Evolution Code Including Arbitrary Magnetic Fields. II. Precision Improvement and Inclusion of Turbulence and Rotation
- A flux tube solar dynamo model based on the competing role of buoyancy and downflows
- 2D solar modeling
- Reconstructed Total Solar Irradiance as a precursor for long-term solar activity predictions: a nonlinear dynamics approach
- Variations of helioseismic parameters due to magnetic field generated by a flux transport model