HR: 1340h
AN: SM23B-0425 [Abstracts]
TI: Laboratory Investigations of Current Sheets at the Electron Skin Depth Scale
AU: * Vincena, S
EM: vincena@physics.ucla.edu
AF: UCLA Department of Physics and Astronomy, LAPD Plasma Laboratory
1000 Veteran Avenue, Room 15-70, Los Angeles, CA 90095-1696
United States
AU: Gekelman, W
EM: gekelman@physics.ucla.edu
AF: UCLA Department of Physics and Astronomy, LAPD Plasma Laboratory
1000 Veteran Avenue, Room 15-70, Los Angeles, CA 90095-1696
United States
AB:
Laboratory Investigations of Current Sheets at the Electron Skin Depth Scale.
Theoretical investigations, in situ spacecraft and rocket missions, and laboratory studies
form an essential triad for understanding the variety of current sheet phenomena found in space
plasmas. In the Large Plasma Device (LAPD) at UCLA, the formation dynamics, equilibrium state,
and wave-mediated disruptions of current sheets can be studied with great spatial and temporal
resolution using a variety of probes as well as non-invasive laser induced fluorescence and
other optical diagnostics.
The LAPD is aptly suited for studying current sheets flowing in a magnetized
background plasma which is capable of supporting Alfvén waves. The cylindrical device
is 20m long and one meter in diameter with a solenoidal magnetic field as high as 3000 Gauss.
For the parameters in this experiment, the plasma column is ten shear Alfvén wavelengths along
the field and 100 electron inertial lengths (δe) (or 200 ρi) in the perpendicular direction.
An electron current sheet is created in the plasma by placing a thin copper plate
in the plasma column at one end of the device and pulsing this plate positive with respect
to the chamber wall. The current sheet extends for the length of the device and
has an initial cross-field size of roughly 45 δe by 0.5δe.
A parallel flow of ions is observed
with similar dimensions and moves in the same direction as the electrons in the current sheet
with a velocity of 0.2 times the ion sound speed. A much weaker sheared perpendicular flow is also
measured. Cross-sections of the ion flow are measured at several axial locations over a distance
of six meters. Second, as the ion flow increases in magnitude, a much broader (8ρi) density
depletion (n=0.25nO) develops around the flow. The gradient scale length of the depletion shortens
until the spontaneous growth of drift waves occurs. This disrupts the electron current and ion flow, and leads to
cross-field transport of plasma and a relaxation of the density gradient. The process of steepening and
disruption repeats during the bias pulse. Detailed two-dimensional correlation measurements reveal
the density and magnetic field propagation of the waves and statistics on the wave fluctuations.
DE: 2159 Plasma waves and turbulence
DE: 2463 Plasma convection (2760)
DE: 2471 Plasma waves and instabilities (2772)
DE: 2721 Field-aligned currents and current systems (2409)
SC: SPA-Magnetospheric Physics [SM]
MN: Fall Meeting 2005