Stellar granulation as seen in disk-integrated intensity. II. Theoretical scaling relations compared with observations
arXiv:1309.1488 · doi:10.1051/0004-6361/201220817
Abstract
A large set of stars observed by CoRoT and Kepler shows clear evidence for the presence of a stellar background, which is interpreted to arise from surface convection, i.e., granulation. These observations show that the characteristic time-scale (tau_eff) and the root-mean-square (rms) brightness fluctuations (sigma) associated with the granulation scale as a function of the peak frequency (nu_max) of the solar-like oscillations. We aim at providing a theoretical background to the observed scaling relations based on a model developed in the companion paper. We computed for each 3D model the theoretical power density spectrum (PDS) associated with the granulation as seen in disk-integrated intensity on the basis of the theoretical model. For each PDS we derived tau_eff and sigma and compared these theoretical values with the theoretical scaling relations derived from the theoretical model and the Kepler measurements. We derive theoretical scaling relations for tau_eff and sigma, which show the same dependence on nu_max as the observed scaling relations. In addition, we show that these quantities also scale as a function of the turbulent Mach number (Ma) estimated at the photosphere. The theoretical scaling relations for tau_eff and sigma match the observations well on a global scale. Our modelling provides additional theoretical support for the observed variations of sigma and tau_eff with nu_m max. It also highlights the important role of Ma in controlling the properties of the stellar granulation. However, the observations made with Kepler on a wide variety of stars cannot confirm the dependence of our scaling relations on Ma. Measurements of the granulation background and detections of solar-like oscillations in a statistically sufficient number of cool dwarf stars will be required for confirming the dependence of the theoretical scaling relations with Ma.
12 pages, 6 figures,accepted for publication in A&A
References in corpus (5)
- CoRoT reveals a magnetic activity cycle in a Sun-like star
- CESAM: a free code for stellar evolution calculations
- Intrinsic photometric characterisation of stellar oscillations and granulation. Solar reference values and CoRoT response functions
- Visibilities and bolometric corrections for stellar oscillation modes observed by Kepler
- Stellar granulation as seen in disk-integrated intensity. I. Simplified theoretical modeling
Cited by in corpus (35)
- The connection between stellar granulation and oscillation as seen by the Kepler mission
- Improvements to stellar structure models, based on a grid of 3D convection simulations. II. Calibrating the mixing-length formulation
- Surface-effect corrections for solar-like oscillations using 3D hydrodynamical simulations
- The Solar-Stellar Connection
- Metallicity effect on stellar granulation detected from oscillating red giants in open clusters
- Limits on surface gravities of Kepler planet-candidate host stars from non-detection of solar-like oscillations
- 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
- Spatially resolved spectroscopy across stellar surfaces. I. Using exoplanet transits to analyze 3-D stellar atmospheres
- Seismic performance
- Connecting photometric and spectroscopic granulation signals with CHEOPS and ESPRESSO
- Bolometric corrections of stellar oscillation amplitudes as observed by the Kepler, CoRoT, and TESS missions
- Surface gravities for 15,000 Kepler stars measured from stellar granulation and validated with Gaia DR2 parallaxes
- HD 99458: First time ever Ap-type star as a Scuti pulsator in a short period eclipsing binary?
- Stellar granulation as seen in disk-integrated intensity. I. Simplified theoretical modeling
- A new method for extracting seismic indices and granulation parameters: results for more than 20,000 CoRoT and Kepler red giants
- Influence of metallicity on the near-surface effect on oscillation frequencies
- M-dwarf's Chromosphere, Corona and Wind Connection via the Nonlinear Alfvén Wave
- Spatially resolved spectroscopy across stellar surfaces. III. Photospheric Fe I lines across HD189733A (K1 V)
- Spatially resolved spectroscopy across stellar surfaces. V. Observational prospects: Toward Earth-like exoplanet detection
- Inference of stellar parameters from brightness variations
- 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
- NLTE 1.5D Modeling of Red Giant Stars
- Observational techniques to measure solar and stellar oscillations
- Asteroseismology of the G8 subgiant beta Aquilae with SONG-Tenerife, SONG-Australia and TESS
- Stellar oscillations - the adiabatic case
- Granulation signatures in 3D hydrodynamical simulations: evaluating background model performance using a Bayesian nested sampling framework
- Granulation signatures as seen by Kepler short-cadence data. I. A decoupling between granulation and oscillation timescales for dwarfs
- Stellar granulation and interferometry
- Scaling relations of convective granulation noise across the HR diagram from 3D stellar atmosphere models
- Granulation on a quiet K dwarf: HD 166620 I. Spectral signatures as a function of line-formation temperature