Direct Measurement of the Solar-Wind Taylor Microscale using MMS Turbulence Campaign Data
Abstract
Using the novel Magnetospheric Multiscale (MMS) mission data accumulated during the 2019 MMS Solar Wind Turbulence Campaign, we calculate the Taylor microscale of the turbulent magnetic field in the solar wind. The Taylor microscale represents the onset of dissipative processes in classical turbulence theory. An accurate estimation of Taylor scale from spacecraft data is, however, usually difficult due to low time cadence, the effect of time decorrelation, and other factors. Previous reports were based either entirely on the Taylor frozen-in approximation, which conflates time dependence, or that were obtained using multiple datasets, which introduces sample-to-sample variation of plasma parameters, or where inter-spacecraft distance were larger than the present study. The unique configuration of linear formation with logarithmic spacing of the 4 MMS spacecraft, during the campaign, enables a direct evaluation of the from a single dataset, independent of the Taylor frozen-in approximation. A value of is obtained, which is about 3 times larger than the previous estimates.
Keywords
Cite
@article{arxiv.2006.11470,
title = {Direct Measurement of the Solar-Wind Taylor Microscale using MMS Turbulence Campaign Data},
author = {Riddhi Bandyopadhyay and William H. Matthaeus and Alexandros Chasapis and Christopher T. Russell and Robert J. Strangeway and Roy B. Torbert and Barbara L. Giles and Daniel J. Gershman and Craig J. Pollock and James L. Burch},
journal= {arXiv preprint arXiv:2006.11470},
year = {2020}
}
Comments
Accepted for publication in the Astrophysical Journal