EGU22-1155, updated on 27 Mar 2022
https://doi.org/10.5194/egusphere-egu22-1155
EGU General Assembly 2022
© Author(s) 2022. This work is distributed under
the Creative Commons Attribution 4.0 License.

Energy transfer, discontinuities and heating in the inner solar wind measured with a weak and local formulation of the Politano-Pouquet law

Vincent David1, Sébastien Galtier1,2, Fouad Sahraoui1, and Lina Hadid1
Vincent David et al.
  • 1Paris-Saclay, Laboratoire de Physique des Plasmas, Plasmas spatiaux , France (vincent.david@lpp.polytechnique.fr)
  • 2Institut universitaire de France

The solar wind is a highly turbulent plasma for which the mean rate of energy transfer ε has been measured for a long time using the Politano-Pouquet (PP98) exact law. However, this law assumes statistical homogeneity that can be violated by the presence of discontinuities. Here, we introduce a new method based on the inertial dissipation DI whose analytical form is derived from incompressible magnetohydrodynamics (MHD); it can be considered as a weak and local (in space) formulation of the PP98 law whose expression is recovered after integration is space. We used DI to estimate the local energy transfer rate from the THEMIS-B and Parker Solar Probe (PSP) data taken in the solar wind at different heliospheric distances. Our study reveals that discontinuities near the Sun lead to a strong energy transfer that affects a wide range of scales σ. We also observe that switchbacks seem to be characterized by a singular behavior with an energy transfer varying as σ−3/4, which slightly differs from classical discontinuities characterized by a σ−1 scaling. A comparison between the measurements of ε and DI shows that in general the latter is significantly larger than the former.

https://arxiv.org/pdf/2201.02377.pdf

How to cite: David, V., Galtier, S., Sahraoui, F., and Hadid, L.: Energy transfer, discontinuities and heating in the inner solar wind measured with a weak and local formulation of the Politano-Pouquet law, EGU General Assembly 2022, Vienna, Austria, 23–27 May 2022, EGU22-1155, https://doi.org/10.5194/egusphere-egu22-1155, 2022.