Parameter estimation of superdiffusive motion of energetic particles upstream of heliospheric shocks
Silvia Perri, Gaetano Zimbardo, Frederic Effenberger, Horst Fichtner

TL;DR
This paper investigates superdiffusive transport of energetic particles upstream of heliospheric shocks, deriving key parameters from spacecraft data and comparing models to better understand anomalous particle propagation.
Contribution
It introduces a comprehensive analysis of superdiffusive particle transport using both microscopic and macroscopic models, and applies this to spacecraft observations to determine transport parameters.
Findings
Superdiffusive behavior observed upstream of shocks.
Derived superdiffusion coefficients and transition scales.
Compared diffusive and superdiffusive models with observational data.
Abstract
In-situ spacecraft observations recently suggested that the transport of energetic particles accelerated at heliospheric shocks can be anomalous, i.e. the mean square displacement can grow non-linearly in time. In particular, a new analysis technique has permitted the study of particle transport properties from energetic particle time profiles upstream of interplanetary shocks. Indeed, the time/spatial power laws of the differential intensity upstream of several shocks are indicative of superdiffusion. A complete determination of the key parameters of superdiffusive transport comprises the power-law index, the superdiffusion coefficient, the related transition scale at which the energetic particle profiles turn to decay as power laws, and the energy spectral index of the shock accelerated particles. Assuming large-scale spatial homogeneity of the background plasma, the power-law…
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