First-Principles Theory of the Rate of Magnetic Reconnection in Magnetospheric and Solar Plasmas
arXiv:2203.14268 · doi:10.1038/s42005-022-00854-x
Abstract
The rate of magnetic reconnection is of the utmost importance in a variety of processes because it controls, for example, the rate energy is released in solar flares, the speed of the Dungey convection cycle in Earth's magnetosphere, and the energy release rate in harmful geomagnetic substorms. It is known from numerical simulations and satellite observations that the rate is approximately 0.1 in normalized units, but despite years of effort, a full theoretical prediction has not been obtained. Here, we present a first-principles theory for the reconnection rate in non-relativistic electron-ion collisionless plasmas, and show that the same prediction explains why Sweet-Parker reconnection is considerably slower. The key consideration of this analysis is the pressure at the reconnection site (i.e., the x-line). We show that the Hall electromagnetic fields in antiparallel reconnection cause an energy void, equivalently a pressure depletion, at the x-line, so the reconnection exhaust opens out, enabling the fast rate of 0.1. If the energy can reach the x-line to replenish the pressure, the exhaust does not open out. In addition to heliospheric applications, these results are expected to impact reconnection studies in planetary magnetospheres, magnetically confined fusion devices, and astrophysical plasmas.
4 figures, accepted in Communications Physics
References in corpus (13)
- Instability of current sheets and formation of plasmoid chains
- Formation of Hard Power-laws in the Energetic Particle Spectra Resulting from Relativistic Magnetic Reconnection
- The Mechanisms of Electron Heating and Acceleration during Magnetic Reconnection
- Why does steady-state magnetic reconnection have a maximum local rate of order 0.1?
- A catastrophe model for fast magnetic reconnection onset
- General Theory of the Plasmoid Instability
- A Review of the 0.1 Reconnection Rate Problem
- Electron Heating During Magnetic Reconnection: A Simulation Scaling Study
- Scaling of magnetic reconnection in relativistic collisionless plasmas
- On the Value of the Reconnection Rate
- Recent Progress on Particle Acceleration and Reconnection Physics during Magnetic Reconnectionin the Magnetically-dominated Relativistic Regime
- Development of a Turbulent Outflow During Electron-Positron Magnetic Reconnection
- Fluid vs. kinetic magnetic reconnection with strong guide-fields
Cited by in corpus (3)
- Energy transport during 3D small-scale reconnection driven by anisotropic plasma turbulence
- Scaling of electron heating by magnetization during reconnection and applications to dipolarization fronts and super-hot solar flares
- Hall effect on the magnetic reconnections during the evolution of a three-dimensional magnetic flux rope