HR: 16:15h
AN: SM52E-02 [PDF]
TI: Long-period Magnetic Pulsations Associated with Detached Proton Auroral Arcs
AU: * Immel, T J
EM: immel@ssl.berkeley.edu
AF: Space Sciences Laboratory
University of California Berkeley, Centennial Dr @ Grizzly Peak, Berkeley, CA 94720 United States
AU: Frey, H U
EM: hfrey@ssl.berkeley.edu
AF: Space Sciences Laboratory
University of California Berkeley, Centennial Dr @ Grizzly Peak, Berkeley, CA 94720 United States
AU: Mende, S B
EM: mende@ssl.berkeley.edu
AF: Space Sciences Laboratory
University of California Berkeley, Centennial Dr @ Grizzly Peak, Berkeley, CA 94720 United States
AU: Bonnell, J W
EM: bonnell@ssl.berkeley.edu
AF: Space Sciences Laboratory
University of California Berkeley, Centennial Dr @ Grizzly Peak, Berkeley, CA 94720 United States
AU: Thomsen, M F
EM: mthomsen@lanl.gov
AF: Los Alamos National Laboratory, P.O. Box 1663, Los Alamos, NM 87545 United States
AB:
One remarkable discovery of the NASA-IMAGE mission is the occurrence of
detached proton auroral arcs. These are fairly long lived ($>$30 minutes)
relative to other subauroral phenomena, are found separated by
hundreds of kilometers from the main dusk-sector auroral oval, and
generally occur several hours into a period of heightened geomagnetic
activity. Interaction of 10-50 keV ring-current protons with a cold
plasmaspheric population drawn outward and sunward by enhanced
magnetospheric convection is generally believed to be the source of the
precipitation. The cold-hot plasma interaction is prone to
the growth of the ion-cyclotron instability, which subsequently scatters
hot ions into the loss cone, which are then seen as precipitation of
energetic protons in detached arcs by the SI-12 proton auroral imaging instrument on IMAGE. It
has now been noted that most, if not all, of the detached proton arcs are
associated with a strong pulsation signature with a period in the range of
300-600 seconds (Pc5), as observed by ground-based magnetometers in the
vicinity of the arcs. It is not yet clear whether the Pc5
pulsations are generated at the magnetopause by solar wind disturbances,
or rather within the magnetosphere by the energetic protons themselves,
possibly through a bounce resonance mechanism. Whether the Pc5 waves are
somehow causative in producing the precipitation, simply a result of the
hot-cold plasma interactions which otherwise scatter the ring current
particles, or just coincidentally present during these events is the
question this investigation seeks to answer.
DE: 0310 Airglow and aurora
DE: 2716 Energetic particles, precipitating
DE: 2730 Magnetosphere--inner
DE: 2772 Plasma waves and instabilities
DE: 7867 Wave/particle interactions
SC: SPA - Magnetospheric Physics [SM]
MN: 2003 Fall Meeting