English

Electron Inertia and Magnetic Reconnection

Plasma Physics 2026-01-27 v5 Solar and Stellar Astrophysics

Abstract

When electron inertia is the only non-ideal effect in the evolution of a magnetic field B\vec{B}, the field lines of B\vec{B} reconnect, but the lines of a related field B\vec{\mathcal{B}} do not. BB+×((c/ωpe)2μ0j)\vec{\mathcal{B}} \equiv \vec{B} + \vec{\nabla}\times \left( (c/\omega_{pe})^2\mu_0\vec{j} \right) with ωpe\omega_{pe} the plasma frequency and j\vec{j} the current density. Although a full four-dimensional relativistic calculation of B\vec{\mathcal{B}} has been made, studies of B\vec{\mathcal{B}} have been focused on systems that depend on only two spatial coordinates. Three results are given: (1) A relatively simple demonstration in three dimensional space that the lines of B\vec{\mathcal{B}} do not reconnect when electron inertia is the only non-ideal effect. (2) The guiding center motion of charged particles is modified by a term that is proportional to (c/ωpe)2(c/\omega_{pe})^2, which is smaller than the drifts proportional to the gyroradius unless the current density is extremely large. (3) In three dimensional space, the evolution velocity of B\vec{\mathcal{B}} is characteristically chaotic, which means neighboring streamlines separate exponentially on a timescale τu\tau_u. B\vec{\mathcal{B}} undergoes large scale reconnection on a timescale that is only an order of magnitude or two longer than τu\tau_u unless all diffusive non-ideal effects, such as resistivity, are absolutely zero.

Keywords

Cite

@article{arxiv.2509.14400,
  title  = {Electron Inertia and Magnetic Reconnection},
  author = {Allen H Boozer},
  journal= {arXiv preprint arXiv:2509.14400},
  year   = {2026}
}
R2 v1 2026-07-01T05:42:46.522Z