HR: 0800h
AN: SM31A-0407 [Abstracts]
TI: Finite-Size Scaling of Spatiotemporal Auroral Emissions as a Signature of Reconnection Dynamics in the
Plasma Sheet
AU: Uritsky, V
EM: uritsky@geo.phys.spbu.ru
AF: Institute of Physics and Physics Department, St. Petersburg State University, St. Petersburg, 198904
Russian Federation
AU: * Klimas, A
EM: alex.klimas@nasa.gov
AF: NASA, Goddard Space Flight Center, Greenbelt, MD 20771
United States
AU: Vassiliadis, D
EM: vassi@electra.gsfc.nasa.gov
AF: Sarissa Technologies, Goddard Space Flight Center, Greenbelt, MD 20771
United States
AU: Baker, D N
EM: daniel.baker@lasp.colorado.edu
AF: LASP, University of Colorado at Boulder, Boulder, CO 80309
United States
AB:
Through analyses of bright night-side auroral emissions as observed by the UVI experiment on the Polar spacecraft, we have
earlier presented evidence for critical dynamics in Earth's magnetotail: (1) Distributions of emission region size, strength,
and duration are scale-free over broad ranges of scales. (2) Emission region dynamic growth and survival statistics exhibit
power-law evolution in superposed epoch time. (3) Expected scaling relationships between the power-law exponents of items 1
and 2 are satisfied. Given the variability of the solar wind driver, we have further suggested that criticality in the
magnetotail dynamics is self organized. To this list of evidence for possibly self-organized critical dynamics in Earth's
magnetotail, we add another item that is considered essential in studies of self-organized criticality in numerical
avalanching models. We present the results of a finite-size scaling analysis of the auroral emission regions. This analysis
will be shown to further support the hypothesis of self-organized criticality while, simultaneously, verifying our earlier
estimates of the power-law exponents of item 1 above. Avalanching models of self-organized criticality govern the
intermittent spatial transport of a quantity from a region of loading to one of unloading. In our search for a region in the
magnetosphere that may influence the auroral emissions while it may also be characterized as a region of scale-free
avalanching, we have focused on the plasma sheet. We interpret the results of the auroral emissions analyses in terms of the
dynamics of reconnection in the turbulent plasma sheet. We suggest that the transport of magnetic flux/energy through the
magnetotail is carried by scale-free avalanches of localized reconnection. We further suggest that this is the true nature of
the largest of these avalanches, substorms.
DE: 2704 Auroral phenomena (2407)
DE: 2723 Magnetic reconnection (7526, 7835)
DE: 2740 Magnetospheric configuration and dynamics
DE: 2744 Magnetotail
DE: 2790 Substorms
SC: SPA-Magnetospheric Physics [SM]
MN: Fall Meeting 2005