Validation of Time-Distance Helioseismology by Use of Realistic Simulations of Solar Convection
arXiv:astro-ph/0612551 · doi:10.1086/512009
Abstract
Recent progress in realistic simulations of solar convection have given us an unprecedented opportunity to evaluate the robustness of solar interior structures and dynamics obtained by methods of local helioseismology. We present results of testing the time-distance method using realistic simulations. By computing acoustic wave propagation time and distance relations for different depths of the simulated data, we confirm that acoustic waves propagate into the interior and then turn back to the photosphere. This demonstrates that in the numerical simulations properties of acoustic waves (p-modes) are similar to the solar conditions, and that these properties can be analyzed by the time-distance technique. For the surface gravity waves (f-mode), we calculate perturbations of their travel times, caused by localized downdrafts, and demonstrate that the spatial pattern of these perturbations (representing so-called sensitivity kernels) is similar to the patterns obtained from the real Sun, displaying characteristic hyperbolic structures. We then test the time-distance measurements and inversions by calculating acoustic travel times from a sequence of vertical velocities at the photosphere of the simulated data, and inferring a mean 3D flow fields by performing inversion based on the ray approximation. The inverted horizontal flow fields agree very well with the simulated data in subsurface areas up to 3 Mm deep, but differ in deeper areas. Due to the cross-talk effects between the horizontal divergence and downward flows, the inverted vertical velocities are significantly different from the mean convection velocities of the simulation dataset.
20 pages, 9 figures, accepted for publication by ApJ
References in corpus (4)
- Magneto-convection in a sunspot umbra
- Acoustic tomography of solar convective flows and structures
- Local helioseismology and correlation tracking analysis of surface structures in realistic simulations of solar convection
- Comparison of large-scale flows on the Sun measured by time-distance helioseismology and local correlation tracking technique
Cited by in corpus (37)
- Coupling from the photosphere to the chromosphere and the corona
- Helioseismology of Sunspots: Confronting Observations with Three-Dimensional MHD Simulations of Wave Propagation
- Solar Flux Emergence Simulations
- High Resolution Helioseismic Imaging of Subsurface Structures and Flows of A Solar Active Region Observed by Hinode
- Time--Distance Helioseismology Data Analysis Pipeline for Helioseismic and Magnetic Imager onboard Solar Dynamics Observatory (SDO/HMI) and Its Initial Results
- High-resolution mapping of flows in the solar interior: Fully consistent OLA inversion of helioseismic travel times
- Validated helioseismic inversions for 3-D vector flows
- Numerical simulation of excitation and propagation of helioseismic MHD waves: Effects of inclined magnetic field
- Multi-Channel Three-Dimensional SOLA Inversion for Local Helioseismology
- Comparison of large-scale flows on the Sun measured by time-distance helioseismology and local correlation tracking technique
- Helioseismic Holography of Simulated Solar Convection and Prospects for the Detection of Small-Scale Subsurface Flows
- Time-distance helioseismology: Sensitivity of f-mode travel times to flows
- Initial Helioseismic Observations by Hinode/SOT
- Advances in Global and Local Helioseismology: an Introductory Review
- Helioseismology with Solar Orbiter
- Magnetic swirls and associated fast magnetoacoustic kink waves in a solar chromospheric flux tube
- Comparison of solar surface flows inferred from time--distance helioseismology and coherent structure tracking using HMI/SDO observations
- Validating Time-Distance Helioseismology With Realistic Quiet Sun Simulations
- Flows around Averaged Solar Active Regions
- Testing Helioseismic-Holography Inversions for Supergranular Flows Using Synthetic Data
- Imaging the Solar Tachocline by Time-Distance Helioseismology
- Helioseismic Investigation of Modeled and Observed Supergranule Structure
- Towards Waveform Heliotomography: Observing Interactions of Helioseismic Waves with a Sunspot
- Numerical MHD Simulations of Solar Magnetoconvection and Oscillations in Inclined Magnetic Field Regions
- Dynamics of Trees of Fragmenting Granules in the Quiet Sun: Hinode/SOT Observations Compared to Numerical Simulation
- Helioseismic Holography of an Artificial Submerged Sound Speed Perturbation and Implications for the Detection of Pre-Emergence Signatures of Active Regions
- Pinsker estimators for local helioseismology
- Combined helioseismic inversions for 3D vector flows and sound-speed perturbations
- Imaging the Sun's near-surface flows using mode-coupling analysis
- Helioseismic Travel-Time Definitions and Sensitivity to Horizontal Flows Obtained From Simulations of Solar Convection
- Horizontal Flows in Active Regions from Ring-diagram and Local Correlation Tracking Methods
- Probabilistic Inversions for Time-Distance Helioseismology
- Validating Forward Modeling and Inversions of Helioseismic Holography Measurements
- Comparison of time-distance inversion methods applied to SDO/HMI Dopplergrams
- Validating time-distance helioseismic inversions for non-separable subsurface profiles of an average supergranule
- Space-time segmentation method for study of the vertical structure and evolution of solar supergranulation from data provided by local helioseismology
- Exploiting solar visible-range observations by inversion techniques: from flows in the solar subsurface to a flaring atmosphere