Towards understanding stellar variability at the sub m/s level: granulation-induced variability across the optical spectrum
arXiv:2608.02240 · doi:10.1093/mnras/stag1412
Abstract
Detecting the radial velocity signal of Earth-mass exoplanets requires the characterisation and removal of granulation-induced radial velocity variability from spectroscopic observations. By coupling three-dimensional (3D) hydrodynamic (HD) simulations to a radiative transfer code, we can isolate and study the effect of granulation on stellar lines. In this study we isolated the impact of granulation on spectral line shapes and shifts for the largest and most diverse synthetic spectral line sample to date. Our aims were twofold. First, we quantified how granulation affects the temporal evolution of shapes and shifts of 72 unblended spectral lines in two wavelength regions: 5500-5600 Å and 6100-6200 Å, from disc centre to the stellar limb. Second, we investigated if spectral lines behave coherently in their line shape variability. We find that weak lines show the largest radial-velocity variability due to granulation, up to 40 m/s at disc centre and 50 m/s at the stellar limb. On the other hand, strong lines exhibit larger variability in equivalent width than weak lines across the stellar disc. In addition, the equivalent width and line depth of a spectral line are strongly linearly correlated with its radial velocity. While granulation affects all three of these quantities, planetary Doppler shifts only affect radial velocities, opening the door to new granulation-mitigation methods. Lastly, we find that the radial velocity and equivalent width of most spectral lines in our sample evolve coherently in time, with the Fe I and Ca I lines behaving the most similarly. Due to the coherency, line blends will not significantly affect the temporal behaviour of RV and line shape, as induced by granulation. Besides, the coherency between spectral lines offer the opportunity to create disc-integrated spectra of many lines simultaneously, which will be explored in future work.
23 pages, 19 figures
References in corpus (34)
- The chemical composition of the Sun
- The PLATO 2.0 Mission
- First stars V - Abundance patterns from C to Zn and supernova yields in the early Galaxy
- The chemical make-up of the Sun: A 2020 vision
- Planetary detection limits taking into account stellar noise. I. Observational strategies to reduce stellar oscillation and granulation effects
- Measuring precise radial velocities on individual spectral lines. I. Validation of the method and application to mitigate stellar activity
- Three years of Sun-as-a-star radial-velocity observations on the approach to solar minimum
- Amplitudes of solar-like oscillations: a new scaling relation
- The IAG solar flux atlas: Accurate wavelengths and absolute convective blueshift in standard solar spectra
- Performance Verification of the EXtreme PREcision Spectrograph
- The Stagger-grid: A Grid of 3D Stellar Atmosphere Models - II. Horizontal and Temporal Averaging and Spectral Line Formation
- 'Ultimate' Information Content in Solar and Stellar Spectra: Photospheric line asymmetries and wavelength shifts
- Stellar Surface Magneto-Convection as a Source of Astrophysical Noise II. Center-to-Limb Parameterisation of Absorption Line Profiles and Comparison to Observations
- The EXPRES Stellar Signals Project II. State of the Field in Disentangling Photospheric Velocities
- Convective blueshifts in the solar atmosphere: III. High-accuracy observations of spectral lines in the visible
- Stellar Surface Magneto-Convection as a Source of Astrophysical Noise III. Sun-as-a-star Simulations and Optimal Noise Diagnostics
- Convective blueshift strengths of 810 F to M solar-type stars
- Stellar Surface Magneto-Convection as a Source of Astrophysical Noise. I. Multi-component Parameterisation of Absorption Line Profiles
- MPS-ATLAS: A fast all-in-one code for synthesising stellar spectra
- HARPS3 for a Roboticized Isaac Newton Telescope
- Three-dimensional simulations of near-surface convection in main-sequence stars. IV. Effect of small-scale magnetic flux concentrations on centre-to-limb variation and spectral lines
- Granulation in K-type Dwarf Stars. I. Spectroscopic observations
- The IAG spectral atlas of the spatially resolved Sun: Centre-to-limb observations
- LARS - An Absolute Reference Spectrograph for solar observations, Upgrade from a prototype to a turn-key system
- 3D magneto-hydrodynamical simulations of stellar convective noise for improved exoplanet detection. I. Case of regularly sampled radial velocity observations
- Small-scale dynamo in cool main sequence stars. II. The effect of metallicity
- : Distinguishing Planet-induced Doppler Signatures from Granulation with a Synthetic Spectra Generator
- The PLATO Mission
- Convective characteristics of Fe I lines across the solar disc
- GRASS II: Simulations of Potential Granulation Noise Mitigation Methods
- 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
- Convective blueshift strengths for 242 evolved stars
- Searching for Low-Mass Exoplanets Amid Stellar Variability with a Fixed Effects Linear Model of Line-by-Line Shape Changes