Interplanetary Shock-induced Magnetopause Motion: Comparison between Theory and Global Magnetohydrodynamic Simulations
Abstract
The magnetopause marks the outer edge of the Earth's magnetosphere and a distinct boundary between solar wind and magnetospheric plasma populations. In this letter, we use global magnetohydrodynamic simulations to examine the response of the terrestrial magnetopause to fast-forward interplanetary shocks of various strengths and compare to theoretical predictions. The theory and simulations indicate the magnetopause response can be characterised by three distinct phases; an initial acceleration as inertial forces are overcome, a rapid compressive phase comprising the majority of the distance travelled, and large-scale damped oscillations with amplitudes of the order of an Earth radius. The two approaches agree in predicting subsolar magnetopause oscillations with frequencies 2-13 mHz but the simulations notably predict larger amplitudes and weaker damping rates. This phenomenon is of high relevance to space weather forecasting and provides a possible explanation for magnetopause oscillations observed following the large interplanetary shocks of August 1972 and March 1991.
Cite
@article{arxiv.2107.04511,
title = {Interplanetary Shock-induced Magnetopause Motion: Comparison between Theory and Global Magnetohydrodynamic Simulations},
author = {Ravindra T. Desai and Mervyn P. Freeman and Jonathan P. Eastwood and Joseph. W. B. Eggington and Martin. O. Archer and Yuri Shprits and Nigel P. Meredith and Frances A. Staples and I. Jonathan Rae and Heli Hietala and Lars Mejnertsen and Jeremy P. Chittenden and Richard B. Horne},
journal= {arXiv preprint arXiv:2107.04511},
year = {2021}
}
Comments
9 pages, 3 figures, 1 table. Accepted as a Geophysical Research Letter on 09 July 2021