English

Magnetic field evolution and reconnection in low resistivity plasmas

Plasma Physics 2023-07-12 v3 High Energy Astrophysical Phenomena Solar and Stellar Astrophysics

Abstract

The mathematics and physics of each of the three aspects of magnetic field evolution -- topology, energy, and helicity -- is remarkably simple and clear. When the resistivity η\eta is small compared to an imposed evolution, a/va/v, timescale, which means Rmμ0va/η>>1R_m\equiv\mu_0va/\eta>>1, magnetic field line chaos dominates the evolution of field-line topology in three-dimensional systems. Chaos has no direct role in the dissipation of energy. A large current density, jηvB/ηj_\eta\equiv vB/\eta, is required for energy dissipation to be on a comparable time scale to the topological evolution. Nevertheless, chaos plus Alfv\'en wave damping explain why both timescales tend to be approximately an order of magnitude longer than the evolution timescale a/va/v. Magnetic helicity is injected onto tubes of field lines when boundary flows have vorticity. Chaos can spread but not destroy magnetic helicity. Resistivity has a negligible effect on helicity accumulation when Rm>>1R_m>>1. Helicity accumulates within a tube of field lines until the tube erupts and moves far from its original location.

Keywords

Cite

@article{arxiv.2212.07487,
  title  = {Magnetic field evolution and reconnection in low resistivity plasmas},
  author = {Allen H. Boozer},
  journal= {arXiv preprint arXiv:2212.07487},
  year   = {2023}
}

Comments

arXiv admin note: text overlap with arXiv:2009.08779 by other authors