The Persistent Mystery of Collisionless Shocks
Abstract
Collisionless shock waves are one of the main forms of energy conversion in space plasmas. They can directly or indirectly drive other universal plasma processes such as magnetic reconnection, turbulence, particle acceleration and wave phenomena. Collisionless shocks employ a myriad of kinetic plasma mechanisms to convert the kinetic energy of supersonic flows in space to other forms of energy (e.g., thermal plasma, energetic particles, or Poynting flux) in order for the flow to pass an immovable obstacle. The partitioning of energy downstream of collisionless shocks is not well understood, nor are the processes which perform energy conversion. While we, as the heliophysics community, have collected an abundance of observations of the terrestrial bow shock, instrument and mission-level limitations have made it impossible to quantify this partition, to establish the physics within the shock layer responsible for it, and to understand its dependence on upstream conditions. This paper stresses the need for the first ever spacecraft mission specifically designed and dedicated to the observation of both the terrestrial bow shock as well as Interplanetary shocks in the solar wind.
Keywords
Cite
@article{arxiv.2306.05491,
title = {The Persistent Mystery of Collisionless Shocks},
author = {Katherine Goodrich and Steven Schwartz and Lynn Wilson and Ian Cohen and Drew Turner and Amir Caspi and Keith Smith and Randall Rose and Phyllis Whittlesey and Ferdinand Plaschke and Jasper Halekas and George Hospodarsky and James Burch and Imogen Gingell and Li-Jen Chen and Alessandro Retino and Yuri Khotyaintsev},
journal= {arXiv preprint arXiv:2306.05491},
year = {2023}
}
Comments
White paper submitted to the Decadal Survey for Solar and Space Physics (Heliophysics) 2024-2033; 9 pages, 4 figures