English

Experimental Evidence of Plasmoids in High-$\beta$ Magnetic Reconnection

Plasma Physics 2022-07-12 v1

Abstract

Magnetic reconnection is a ubiquitous and fundamental process in plasmas by which magnetic fields change their topology and release magnetic energy. Despite decades of research, the physics governing the reconnection process in many parameter regimes remains controversial. Contemporary reconnection theories predict that long, narrow current sheets are susceptible to the tearing instability and split into isolated magnetic islands (or plasmoids), resulting in an enhanced reconnection rate. While several experimental observations of plasmoids in the regime of low- to intermediate-β\beta (where β\beta is the ratio of plasma thermal pressure to magnetic pressure) have been made, there is a relative lack of experimental evidence for plasmoids in the high-β\beta reconnection environments which are typical in many space and astrophysical contexts. Here, we report the observation of strong experimental evidence for plasmoid formation and dynamics in laser-driven high-β\beta reconnection experiments.

Keywords

Cite

@article{arxiv.2207.04119,
  title  = {Experimental Evidence of Plasmoids in High-$\beta$ Magnetic Reconnection},
  author = {J. A. Pearcy and M. J. Rosenberg and T. M. Johnson and G. D. Sutcliffe and B. L. Reichelt and J. D. Hare and N. F. Loureiro and R. D. Petrasso and C. K. Li},
  journal= {arXiv preprint arXiv:2207.04119},
  year   = {2022}
}