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L. Westrich

Publications and source records attributed to L. Westrich.

2 recordsLinked to original sources

Evidence of global periodicity in PSP data: can they be linked to long-period oscillations in solar active regions?

The presence of coherent oscillatory signatures in Parker Solar Probe SWEAP datasets, identified through a series of spectral analyses, is addressed, and their possible connection to oscillatory phenomena in HMI/SDO datasets of active regions is questioned. The goal of the work is to perform a systematic analysis of oscillation spectra applied to SWEAP/PSP time series of various physical quantities. We apply the Lomb-Scargle spectral analysis method to the original, unevenly sampled PSP datasets and to wavelet analyses corresponding to the interpolated, evenly sampled time series. Furthermore, the statistical analysis uses spectra developed for 17 PSP encounters to obtain statistically proven characteristic periodicities. It has been found that, similarly to previously studied spectra in solar active regions with periods above 2 hours, the solar wind datasets manifest sequences of statistically significant periods in the same range in datasets of different physical quantities. It has been found that, similarly to previously studied spectra in solar active regions with periods exceeding 2 hours, the solar wind datasets exhibit sequences of statistically significant periods in the same range across datasets of different physical quantities. Based on the analysis, it is concluded that the spectra exhibit coherent, fixed periodicities in the range of 2-20 hours, with the highest statistical confidence in periods between 4 and 8 hours. It is also vital that the signature of such periods is systematically absent in datasets of PSP orbital trajectory far from the encounter sites. The coherent signal is detectable at the place of the orbital perihelion (when PSP moves almost horizontally with respect to the solar surface) and during approaching and receding phases when PSP flies almost radially.

astro-ph.SR

Polytropic stellar wind models with strongly localized heating

Polytropic models of stellar winds remain to be useful tools because they allow for a simple description of the energy balance of the expanding plasma without explicitly specifying potentially complex energy transport processes like, e.g., heat conduction or extended wave heating. Among recent applications to stellar winds and to the solar wind was a study of the consequences of strongly localized heating in the latter, possibly due to acoustic waves. Such 'nonuniform' heating can result from a time- and space-localized damping of wave modes and allows, as an extreme case, an adiabatic expansion of particular wind streams outside the heating region. The present study generalizes the modeling from the first analytical as well as numerical studies, that were limited to this extreme case, towards a more realistic non-adiabatic behaviour. The additional energy due to heating is demonstrated to be in a plausible range in view of typical flare energies and low compared to the gravitational energy of the plasma in this region. The corresponding solutions may be of interest for stellar winds, in general, and w.r.t. recent observations made with the Parker Solar Probe, which revealed strongly varying wind streams and the presence of acoustic waves near the Sun, for the solar wind, in particular. Potential observational evidence for the solar wind is discussed.

astro-ph.SR