Determination of Radial-Tangential Macroturbulence Stratification in the Solar Photosphere

This study models the depth-dependent behavior of Radial-Tangential (RT) macroturbulent velocity fields in the solar photosphere using high-resolution Fourier-domain analysis. The purpose of this investigation is to determine the velocity stratification to provide a useful empirical benchmark for evaluating both classical one-dimensional models and modern three-dimensional hydrodynamical simulations. The method employs 14 carefully selected, unblended iron lines from the solar flux atlas, which are analyzed through a disk-integration technique while fixing the solar synodic equatorial rotation and microturbulent velocity. Findings reveal that the macroturbulent velocity is not a constant value; it exhibits an overall decline from approximately 4.0 km s−1 in the deeper photospheric layers at an optical depth of log ̄τ = −0.61 to 3.0 km s−1 in the upper atmospheric layers at an optical depth of log ̄τ = −1.47. This velocity gradient is consistent with the convective deceleration of solar granulation as it rises through the atmosphere. The results show good quantitative agreement with prior wavelength-domain studies, supporting the interpretation that the detected stratification represents a physical property of the photosphere rather than a numerical artifact. These established profiles offer a useful semi-observational constraint for testing modern solar atmosphere simulations.

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Publication Details

Journal
Journal of Advanced Research in Natural and Applied Sciences
Published
2026-09-30
DOI
https://doi.org/10.28979/jarnas.1988347
Primary Topic
Solar and Space Plasma Dynamics
Type
article
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article

Determination of Radial-Tangential Macroturbulence Stratification in the Solar Photosphere

İpek H. Çay, M. T. Cay
Journal of Advanced Research in Natural and Applied Sciences
Solar and Space Plasma Dynamics
article

Determination of Radial-Tangential Macroturbulence Stratification in the Solar Photosphere

İpek H. Çay, M. T. Cay
article en

Abstract

This study models the depth-dependent behavior of Radial-Tangential (RT) macroturbulent velocity fields in the solar photosphere using high-resolution Fourier-domain analysis. The purpose of this investigation is to determine the velocity stratification to provide a useful empirical benchmark for evaluating both classical one-dimensional models and modern three-dimensional hydrodynamical simulations. The method employs 14 carefully selected, unblended iron lines from the solar flux atlas, which are analyzed through a disk-integration technique while fixing the solar synodic equatorial rotation and microturbulent velocity. Findings reveal that the macroturbulent velocity is not a constant value; it exhibits an overall decline from approximately 4.0 km s−1 in the deeper photospheric layers at an optical depth of log ̄τ = −0.61 to 3.0 km s−1 in the upper atmospheric layers at an optical depth of log ̄τ = −1.47. This velocity gradient is consistent with the convective deceleration of solar granulation as it rises through the atmosphere. The results show good quantitative agreement with prior wavelength-domain studies, supporting the interpretation that the detected stratification represents a physical property of the photosphere rather than a numerical artifact. These established profiles offer a useful semi-observational constraint for testing modern solar atmosphere simulations.

Journal of Advanced Research in Natural and Applied SciencesVol. 12(3)
Istanbul University (TR)
Openalex Percentile: Top 11%
Solar and Space Plasma Dynamics
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Determination of Radial-Tangential Macroturbulence Stratification in the Solar Photosphere — İpek H. Çay, M. T. Cay · Journal of Advanced Research in Natural and Applied Sciences (2026) | TGRS Research Map | TGRS