Statistics of Turbulence in the Solar Wind. I. What is the Reynolds Number of the Solar Wind?

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Main Authors: Wrench, Daniel, Parashar, Tulasi N., Oughton, Sean, de Lange, Kevin, Frean, Marcus
Format: Preprint
Published: 2023
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_version_ 1866909633575124992
author Wrench, Daniel
Parashar, Tulasi N.
Oughton, Sean
de Lange, Kevin
Frean, Marcus
author_facet Wrench, Daniel
Parashar, Tulasi N.
Oughton, Sean
de Lange, Kevin
Frean, Marcus
contents The Reynolds number, Re, is an important quantity for describing a turbulent flow. It tells us about the bandwidth over which energy can cascade from large scales to smaller ones, prior to the onset of dissipation. However, calculating it for nearly collisionless plasmas like the solar wind is challenging. Previous studies have used "effective" Reynolds number formulations, expressing Re as a function of the correlation scale and either the Taylor scale or a proxy for the dissipation scale. We find that the Taylor scale definition of the Reynolds number has a sizeable prefactor of approximately 27, which has not been employed in previous works. Drawing from 18 years of data from the Wind spacecraft at 1 au, we calculate the magnetic Taylor scale directly and use both the ion inertial length and the magnetic spectrum break scale as approximations for the dissipation scale, yielding three distinct Re estimates for each 12-hour interval. Average values of Re range between 116,000 and 3,406,000, within the general distribution of past work. We also find considerable disagreement between the methods, with linear associations of between 0.38 and 0.72. Although the Taylor scale method is arguably more physically motivated, due to its dependence on the energy cascade rate, more theoretical work is needed in order to identify the most appropriate way of calculating effective Reynolds numbers for kinetic plasmas. As a summary of our observational analysis, we make available a data product of 28 years of 1 au solar wind and magnetospheric plasma measurements from Wind.
format Preprint
id arxiv_https___arxiv_org_abs_2312_06863
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Statistics of Turbulence in the Solar Wind. I. What is the Reynolds Number of the Solar Wind?
Wrench, Daniel
Parashar, Tulasi N.
Oughton, Sean
de Lange, Kevin
Frean, Marcus
Plasma Physics
Space Physics
The Reynolds number, Re, is an important quantity for describing a turbulent flow. It tells us about the bandwidth over which energy can cascade from large scales to smaller ones, prior to the onset of dissipation. However, calculating it for nearly collisionless plasmas like the solar wind is challenging. Previous studies have used "effective" Reynolds number formulations, expressing Re as a function of the correlation scale and either the Taylor scale or a proxy for the dissipation scale. We find that the Taylor scale definition of the Reynolds number has a sizeable prefactor of approximately 27, which has not been employed in previous works. Drawing from 18 years of data from the Wind spacecraft at 1 au, we calculate the magnetic Taylor scale directly and use both the ion inertial length and the magnetic spectrum break scale as approximations for the dissipation scale, yielding three distinct Re estimates for each 12-hour interval. Average values of Re range between 116,000 and 3,406,000, within the general distribution of past work. We also find considerable disagreement between the methods, with linear associations of between 0.38 and 0.72. Although the Taylor scale method is arguably more physically motivated, due to its dependence on the energy cascade rate, more theoretical work is needed in order to identify the most appropriate way of calculating effective Reynolds numbers for kinetic plasmas. As a summary of our observational analysis, we make available a data product of 28 years of 1 au solar wind and magnetospheric plasma measurements from Wind.
title Statistics of Turbulence in the Solar Wind. I. What is the Reynolds Number of the Solar Wind?
topic Plasma Physics
Space Physics
url https://arxiv.org/abs/2312.06863