4.6 Article

Analysis of Pseudo-Lyapunov Exponents of Solar Convection Using State-of-the-Art Observations

期刊

ENTROPY
卷 23, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/e23040413

关键词

astrophysical fluid dynamics; hydrodynamics; solar photosphere; solar granulation; stellar convection envelopes

资金

  1. European Union's Horizon 2020 Research and Innovation program [824135, 729500]
  2. Italian MIUR-PRIN grant
  3. Istituto Nazionale di Astrofisica
  4. European Research Council under the European Union Horizon 2020 research and innovation program [682462]
  5. Research Council of Norway through its Centres of Excellence scheme [262622]

向作者/读者索取更多资源

Researchers evaluated the pseudo-Lyapunov exponents of convective motions observed on the Sun's surface, finding that the computed exponents have negative values, indicating a dissipative regime. The values of the estimated exponents increase with spatial resolution of the data and are largely unaffected by small concentrations of magnetic field. Additionally, similar results were achieved by estimating the exponents from residuals between values derived from observations taken at different times, which better accounts for the definition of these exponents compared to previous studies.
The solar photosphere and the outer layer of the Sun's interior are characterized by convective motions, which display a chaotic and turbulent character. In this work, we evaluated the pseudo-Lyapunov exponents of the overshooting convective motions observed on the Sun's surface by using a method employed in the literature to estimate those exponents, as well as another technique deduced from their definition. We analyzed observations taken with state-of-the-art instruments at ground- and space-based telescopes, and we particularly benefited from the spectro-polarimetric data acquired with the Interferometric Bidimensional Spectrometer, the Crisp Imaging SpectroPolarimeter, and the Helioseismic and Magnetic Imager. Following previous studies in the literature, we computed maps of four quantities which were representative of the physical properties of solar plasma in each observation, and estimated the pseudo-Lyapunov exponents from the residuals between the values of the quantities computed at any point in the map and the mean of values over the whole map. In contrast to previous results reported in the literature, we found that the computed exponents hold negative values, which are typical of a dissipative regime, for all the quantities derived from our observations. The values of the estimated exponents increase with the spatial resolution of the data and are almost unaffected by small concentrations of magnetic field. Finally, we showed that similar results were also achieved by estimating the exponents from residuals between the values at each point in maps derived from observations taken at different times. The latter estimation technique better accounts for the definition of these exponents than the method employed in previous studies.

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