Stellar granulation as seen in disk-integrated intensity. I. Simplified theoretical modeling
arXiv:1309.1620 · doi:10.1051/0004-6361/201220816
Abstract
The solar granulation is known for a long time to be a surface manifestation of convection. Thanks to the current space-borne missions CoRoT and Kepler, it is now possible to observe in disk-integrated intensity the signature of this phenomena in a growing number of stars. The space-based photometric measurements show that the global brightness fluctuations and the lifetime associated with granulation obeys characteristic scaling relations. We thus aim at providing a simple theoretical modeling to reproduce these scaling relations and subsequently at inferring the physical properties of granulation properties across the HR diagram. We develop a simple 1D theoretical model that enable us to test any prescription concerning the time-correlation between granules. The input parameters of the model are extracted from 3D hydrodynamical models of the surface layers of stars, and the free parameters involved in the model are calibrated with solar observations. Two different prescriptions for representing the eddy time-correlation in the Fourier space are compared: a Lorentzian and an exponential form. Finally, we compare our theoretical prediction with a 3D radiative hydrodynamical (RHD) numerical modeling of stellar granulation (ab-initio approach). Provided that the free parameters are appropriately adjusted, our theoretical model satisfactorily reproduces the shape and the amplitude of the observed solar granulation spectrum. The best agreement is obtained with an exponential form. Furthermore, our theoretical model results in granulation spectra that consistently agree with the these calculated on the basis of the ab-initio approach with two 3D RHD models. Comparison between theoretical granulation spectra calculated with the present model and high precision photometry measurements of stellar granulation is undertaken in a companion paper.
10 pages, 2 figures, accepted for publication in A&A
References in corpus (23)
- Red-giant seismic properties analyzed with CoRoT
- The relation between and for solar-like oscillations
- The underlying physical meaning of the relation
- CESAM: a free code for stellar evolution calculations
- Granulation in Red Giants: observations by the Kepler mission and 3D convection simulations
- A Grid of 3D Stellar Atmosphere Models of Solar Metallicity: I. General Properties, Granulation and Atmospheric Expansion
- Evidence for the impact of stellar activity on the detectability of solar-like oscillations observed by Kepler
- Predicting the detectability of oscillations in solar-type stars observed by Kepler
- Excitation of stellar p-modes by turbulent convection: 1. Theoretical formulation
- Amplitudes of solar-like oscillations: a new scaling relation
- The quest for the solar g modes
- Intrinsic photometric characterisation of stellar oscillations and granulation. Solar reference values and CoRoT response functions
- Numerical constraints on the model of stochastic excitation of solar-type oscillations
- Evidence for granulation in early A-type stars
- Numerical 3D constraints on convective eddy time-correlations : consequences for stochastic excitation of solar p modes
- Hydrodynamical simulations of convection-related stellar micro-variability. I. Statistical relations for photometric and photocentric variability
- Stellar granulation as seen in disk-integrated intensity. II. Theoretical scaling relations compared with observations
- A closure model with plumes I. The solar convection
- Modelling the excitation of acoustic modes in Alpha Cen A
- Hydrodynamical simulations of convection-related stellar micro-variability. II. The enigmatic granulation background of the COROT target HD49933
- Temporal variations in the acoustic signal from faculae
- Turbulent eddy-time-correlation in the solar convective zone
- 3D Model Atmospheres of Red Giant Stars
Cited by in corpus (18)
- The connection between stellar granulation and oscillation as seen by the Kepler mission
- Metallicity effect on stellar granulation detected from oscillating red giants in open clusters
- A Granulation "Flicker"-based Measure of Stellar Surface Gravity
- Low-frequency variability in massive stars: Core generation or surface phenomenon?
- Stellar Granulation as the Source of High-Frequency Flicker in Kepler Light Curves
- Stellar granulation as seen in disk-integrated intensity. II. Theoretical scaling relations compared with observations
- Spatially resolved spectroscopy across stellar surfaces. I. Using exoplanet transits to analyze 3-D stellar atmospheres
- Seismic performance
- HD 99458: First time ever Ap-type star as a Scuti pulsator in a short period eclipsing binary?
- A new method for extracting seismic indices and granulation parameters: results for more than 20,000 CoRoT and Kepler red giants
- Spatially resolved spectroscopy across stellar surfaces. V. Observational prospects: Toward Earth-like exoplanet detection
- Spatially resolved spectroscopy across stellar surfaces. III. Photospheric Fe I lines across HD189733A (K1 V)
- Hydrodynamical model atmospheres: Their impact on stellar spectroscopy and asteroseismology of late-type stars
- Solar Photospheric Spectrum Microvariability I. Theoretical searches for proxies of radial-velocity jittering
- Predicting convective blueshift and radial-velocity dispersion due to granulation for FGK stars
- A Refined Model of Convectively-Driven Flicker in Kepler Light Curves
- Granulation signatures in 3D hydrodynamical simulations: evaluating background model performance using a Bayesian nested sampling framework
- Granulation on a quiet K dwarf: HD 166620 I. Spectral signatures as a function of line-formation temperature