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Stellar Surface Magneto-Convection as a Source of Astrophysical Noise III. Sun-as-a-star Simulations and Optimal Noise Diagnostics

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arxiv 1903.08446 v2 pith:FT4SUTHF submitted 2019-03-20 astro-ph.EP astro-ph.SR

Stellar Surface Magneto-Convection as a Source of Astrophysical Noise III. Sun-as-a-star Simulations and Optimal Noise Diagnostics

classification astro-ph.EP astro-ph.SR
keywords noisestellargranulationlineobservationssun-as-a-starvelocitiesasymmetries
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Stellar surface magnetoconvection (granulation) creates asymmetries in the observed stellar absorption lines that can subsequently manifest themselves as spurious radial velocities shifts. In turn, this can then mask the Doppler-reflex motion induced by orbiting planets on their host stars, and represents a particular challenge for determining the masses of low-mass, long-period planets. Herein, we study this impact by creating Sun-as-a-star observations that encapsulate the granulation variability expected from 3D magnetohydrodynamic simulations. These Sun-as-a-star model observations are in good agreement with empirical observations of the Sun, but may underestimate the total variability relative to the quiet Sun due to the increased magnetic field strength in our models. We find numerous line profile characteristics linearly correlate with the disc-integrated convection-induced velocities. Removing the various correlations with the line bisector, equivalent width, and the V_asy indicator may reduce ~50-60% of the granulation noise in the measured velocities. We also find that simultaneous photometry may be a key diagnostic, as our proxy for photometric brightness also allowed us to remove ~50% of the granulation-induced radial velocity noise. These correlations and granulation-noise mitigations breakdown in the presence of low instrumental resolution and/or increased stellar rotation, as both act to smooth the observed line profile asymmetries.

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  1. Towards understanding stellar variability at the sub m/s level: granulation-induced variability across the optical spectrum

    astro-ph.SR 2026-08 conditional novelty 6.0

    Using 3D solar simulations, 72 spectral lines show that weak lines have the largest granulation-induced RV variability (up to 40–50 m/s), strong lines vary most in equivalent width, and most lines' RV and width change...