An Intermittent Model for the $1/f$ Spectrum in the Pristine Solar Wind
Abstract
We present a statistical, observational study of the range of solar wind turbulence, where denotes frequency, using in situ data from the Parker Solar Probe (PSP). We compute the energy cascade rate using the third order law of incompressible magnetohydrodynamic (MHD) turbulence, incorporating expansion terms to account for solar wind dynamics. Our results reveal a dependence of the energy cascade rate, where is the temporal lag, within the range, in contrast to the constant cascade rate in the inertial range. To explain this behavior, we propose a new intermittent model predicting a scaling of the cascade rate, where represents the spatial lag. The analysis of the probability density function (PDF) of magnetic field increments confirms the intermittent nature of the parallel fluctuation component, whereas the perpendicular fluctuations are found to be quasi Gaussian. These findings provide new insights into energy transfer processes in the range of solar wind turbulence, with potential applications in planetary magnetosheaths.
Cite
@article{arxiv.2506.04366,
title = {An Intermittent Model for the $1/f$ Spectrum in the Pristine Solar Wind},
author = {Maia Brodiano and Fouad Sahraoui and Davide Manzini and Lina Z. Hadid and Facundo Pugliese and Pablo Dmitruk and Nahuel Andrés},
journal= {arXiv preprint arXiv:2506.04366},
year = {2025}
}
Comments
6 pages, 4 figures