Magnetic guide field generation in thin collisionless current sheets
arXiv:0903.0334 · doi:10.5194/angeo-28-789-2010
Abstract
In thin ( few ) collisionless current sheets in a space plasma like the magnetospheric tail or magnetopause current layer, magnetic fields can grow {from thermal fluctuation level by the action of the non-magnetic Weibel instability \citep{weibel1959}.}The instability is driven by the counter-streaming electron inflow from the `ion diffusion' (ion inertial Hall) region into the inner current (electron inertial) region from where the ambient magnetic fields are excluded when released by the inflowing electrons which become non-magnetic on scales smaller than the electron gyroradius and few . It is shown that under magnetospheric tail conditions it takes 20-40 e-folding times ( 10-20 s) for the Weibel field to reach observable amplitudes nT. In counter-streaming inflows these fields are predominantly of guide field type. This is of interest in magnetic guide field reconnection. Guide fields are known to possibly providing the conditions required for the onset of bursty reconnection \citep {drake2006,pritchett2005a,pritchett2006a,cassak2007}. In non-symmetric inflows the Weibel field might itself evolve a component normal to the current sheet which could also contribute to reconnection onset.
pdf-LaTex manuscript, 9 pages, 2 figure, theoretical: Weibel instability in thin current sheets
References in corpus (3)
Cited by in corpus (7)
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- A note on the Weibel instability and thermal fluctuations
- Instabilities of collisionless current sheets revisited: the role of anisotropic heating
- Electron Weibel instability and~quasi-magnetostatic structures in~an~expanding collisionless plasma
- A note on the structure and kinematics of Harris current sheets
- Collisionless reconnection: The sub-microscale mechanism of magnetic field line interaction
- Collisionless magnetic reconnection: Flux quanta, field lines, `composite electrons' -- Is the quantum-Hall effect involved in its micro-scale physics?