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Vincenzo Capparelli

Publications and source records attributed to Vincenzo Capparelli.

3 recordsLinked to original sources

Analysing Turbulent Energy Cascade in a Coronal Mass Ejection using Empirical Mode Decomposition

Coronal mass ejections (CMEs) are large-scale expulsions of plasma and magnetic flux from the Sun's corona into the heliosphere. In interplanetary space they are referred to as interplanetary CMEs (ICMEs), often characterised by a shock, a sheath, and in some cases a magnetic cloud, and are capable of triggering geomagnetic storms. We apply empirical mode decomposition (EMD) in conjunction with Hilbert spectral analysis (HSA) to investigate turbulence characteristics at different stages of an ICME event observed on 27 June 2013 by the MAG instrument onboard NASA's ACE spacecraft. The event is divided into four regions: (i) preceding solar wind, (ii) sheath, (iii) magnetic cloud, and (iv) trailing solar wind. The magnetic field components (Bx, By, Bz) are decomposed into intrinsic mode functions using EMD, and instantaneous frequencies and amplitudes are derived via HSA. Spectral slopes in the inertial range are calculated from the second-order marginal Hilbert spectra. The preceding solar wind shows a slope near the Kolmogorov value (α_HHT \approx -1.68), indicating fully developed turbulence at 1 AU. Clear steepening is observed in the sheath and trailing solar wind (α_HHT \approx -1.78 and -1.79), consistent with enhanced intermittency and non-linear activity from shock compression and solar wind-ICME interactions. Within the magnetic cloud the exponent is slightly less steep (α_HHT \approx -1.71), suggesting the effects driving steepening are less prevalent inside the flux rope. ICME passage thus modifies the turbulent energy distribution across scales, and the EMD-HSA method provides smoother and more stable spectral estimates than conventional Fourier approach.

astro-ph.SR

Continuum enhancements, line profiles and magnetic field evolution during consecutive flares

During solar flares, magnetic energy can be converted into electromagnetic radiation from radio waves to $γ$ rays. Enhancements in the continuum at visible wavelengths give rise to white-light flares, as well as continuum enhancements in the FUV and NUV passbands. In addition, the strong energy release in these events can lead to the rearrangement of the magnetic field at the photospheric level, causing morphological changes in large and stable magnetic structures like sunspots. In this context, we describe observations acquired by satellite instruments (IRIS, SDO/HMI, Hinode/SOT) and ground-based telescopes (ROSA/DST) during two consecutive C7.0 and X1.6 flares occurred in active region NOAA 12205 on 2014 November 7. The flare was accompanied by an eruption. The results of the analysis show the presence of continuum enhancements during the evolution of the events, observed both in ROSA images and in \textit{IRIS} spectra. In the latter, a prominent blue-shifted component is observed at the onset of the eruption. We investigate the role played by the evolution of the $δ$ sunspots of the active region in the flare triggering, and finally we discuss the changes in the penumbrae surrounding these sunspots as a further consequence of these flares.

astro-ph.SR

H$α$ and H$β$ emission in a C3.3 solar flare: comparison between observations and simulations

The Hydrogen Balmer series is a basic radiative loss channel from the flaring solar chromosphere. We report here on the analysis of an extremely rare set of simultaneous observations of a solar flare in the H$α$ and H$β$ lines at high spatial and temporal resolution, which were acquired at the Dunn Solar Telescope. Images of the C3.3 flare (SOL2014-04-22T15:22) made at various wavelengths along the H$α$ line profile by the Interferometric Bidimensional Spectrometer (IBIS) and in the H$β$ with the Rapid Oscillations in the Solar Atmosphere (ROSA) broadband imager are analyzed to obtain the intensity evolution. The H$α$ and H$β$ intensity excesses in three identified flare footpoints are well correlated in time. We examine the ratio of H$α$ to H$β$ flare excess, which was proposed by previous authors as a possible diagnostic of the level of electron beam energy input. In the stronger footpoints, the typical value of the the H$α$/H$β$ intensity ratio observed is $\sim 0.4-0.5$, in broad agreement with values obtained from a RADYN non-LTE simulation driven by an electron beam with parameters constrained (as far as possible) by observation. The weaker footpoint has a larger H$α$/H$β$ ratio, again consistent with a RADYN simulation but with a smaller energy flux. The H$α$ line profiles observed have a less prominent central reversal than is predicted by the RADYN results, but can be brought into agreement if the H$α$-emitting material has a filling factor of around 0.2--0.3.

astro-ph.SR