HR: 1340h
AN: SM13A-1195 [Abstracts]
TI: Cluster Observations Whistler-mode Propagation Inside and Outside the Plasmasphere
AU: * Platino, M
EM: platinom@stanford.edu
AF: STAR Laboratory, 350 Serra Mall, Stanford University, Stanford, CA 94305
AU: Inan, U S
EM: inan@stanford.edu
AF: STAR Laboratory, 350 Serra Mall, Stanford University, Stanford, CA 94305
AU: Bell, T F
EM: bell@nova.stanford.edu
AF: STAR Laboratory, 350 Serra Mall, Stanford University, Stanford, CA 94305
AU: Gurnett, D A
AF: Department of Physics and Astronomy, University Of Iowa, Iowa City, IA 52242
AU: Pickett, J S
AF: Department of Physics and Astronomy, University Of Iowa, Iowa City, IA 52242
AB:
ELF/VLF Chorus emissions and lightning- generated whistlers are two types of whistler mode waves commonly detected in the
inner regions of the Earth's magnetosphere. Lightning-generated whistlers are generally observed in the region 2$<$L$<$6,
while chorus is generally observed in the region 4$<$L$<$6. Studies of ELF/VLF chorus emissions observed near the magnetic
equator have shown that their sources can be closely localized in space , while whistlers are known to be generated by
lightning strikes on Earth, and can travel relatively longer distances into the magnetosphere with relatively broad wave
fronts.
Recently the Cluster spacecraft have provided a unique opportunity to obtain four simultaneous measurements of these
ELF/VLF whistler mode waves at four separate points in space. In the present paper we use CLUSTER data to compare the time
signatures of both chorus emissions and whistlers in order to determine how the spectral properties of these waves vary with
position. In particular we determine differences in the frequency spectrum of the lightning-generated whistlers, both inside
and outside the plasmasphere, and use these differences to test the hypothesis that whistlers propagating outside the
plasmasphere are often strongly coupled to lower hybrid waves in regions where the plasma density profile is irregular. In
the case of chorus emissions, we compare the frequency shifts of individual chorus elements as measured on the CLUSTER
spacecraft and use this data to determine the spatial and temporal characteristics of the chorus source regions
DE: 7871 Waves and instabilities
DE: 6984 Waves in plasma
DE: 2730 Magnetosphere--inner
SC: SPA-Magnetospheric Physics [SM]
MN: 2004 AGU Fall Meeting