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Electromagnetic velocity gradient instabilities in the magnetosphere
Authors:G S Lakhina
Institution:(1) Theoretische Physik IV, Ruhr-Universität Bochum, Bochum, Germany;(2) Present address: Indian Institute of Geomagnetism, Colaba, Bombay, India
Abstract:The velocity gradients of the contrastreaming electron beams observed in the Earth's magnetosphere can excite three types of ordinary mode instabilities, namely (i) nablaB-resonance electron instability, (ii) ion cyclotron instability, and (iii) unmagnetized ion instability. The nablaB-resonance electron instability occurs at small values of the shear parameter 10–4<S<10–3, whereS = (1/OHgre){dU o(x)}/(dx)] (U 0(x) and OHgr e being the streaming velocity of the electron beams and the electron cyclotron frequency, respectively). Near the equatorial plane of the bouncing electron beams region, this instability can generate electromagnetic waves having frequenciesfsim(0.045–0.2) Hz and wavelentghslambda bottom sim (0.5–10)km, and the wave magnetic field is polarised in a radial direction. This instability can also occur in the plasma sheet region during the earthwards and tailwards plasma flows events and can generate waves, with wave magnetic field polarised along north-south direction, in the frequency rangefsim(0.007–0.02) Hz withlambda bottom sim (10–100)km nearR=–35R E . For 10–3<S<10–2, the ion cyclotron instability is excited and it can generate waves up to 5th harmonic or so of ion cyclotron frequency. ForS>10–2, the unmagnetized ion instability is excited which can generate electromagnetic waves having frequences from 5 to 50 Hz and typical wavelengthslambda bottom sim (0.5–6)km. The growth rates of all the three velocity shear driven instabilities are reduced in the presence of cold background plasma. The turbulence generated by these instabilities may give rise to enhanced effective electron-electron and electron-ion collisions and broaden the bouncing electron beams.
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