Validated helioseismic inversions for 3-D vector flows
M. Svanda (1), L. Gizon (1, 2), S. M. Hanasoge (1, 3), S. D., Ustyugov (4) ((1) Max-Planck-Institut fuer Sonnensystemforschung,, Katlenburg-Lindau, Germany, (2) Institut fuer Astrophysik,, Georg-August-Universitaeat Goettingen, Germany, (3) Department of, Geosciences

TL;DR
This study validates a new helioseismic inversion method for 3-D solar flows, demonstrating its ability to accurately recover horizontal velocities and average flow properties in the Sun's near-surface layers using synthetic data.
Contribution
The paper introduces an improved SOLA inversion code with constraints for helioseismic flow inference, validated through realistic simulations and noise modeling.
Findings
Horizontal velocities inferred without bias at SNR > 1 in top 3.5 Mm
Vertical velocity component is challenging to recover due to cross-talk
Averaging over multiple regions enables reliable measurement of flow properties
Abstract
According to time-distance helioseismology, information about internal fluid motions is encoded in the travel times of solar waves. The inverse problem consists of inferring 3-D vector flows from a set of travel-time measurements. Here we investigate the potential of time-distance helioseismology to infer 3-D convective velocities in the near-surface layers of the Sun. We developed a new Subtractive Optimally Localised Averaging (SOLA) code suitable for pipeline pseudo-automatic processing. Compared to its predecessor, the code was improved by accounting for additional constraints in order to get the right answer within a given noise level. The main aim of this study is to validate results obtained by our inversion code. We simulate travel-time maps using a snapshot from a numerical simulation of solar convective flows, realistic Born travel-time sensitivity kernels, and a realistic…
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