Biblio
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Wave-induced particle precipitation from the magnetosphere and the associated ionospheric perturbations. AGARD, The Aerospace Environment at High Altitudes and its Implications for Spacecraft Charging and Communications 10 p (SEE N87-26937 21-18).
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1987.
A case study of lightning, whistlers, and associated ionospheric effects during a substorm particle injection event. Journal of Geophysical Research. 97:65-75.
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1992.
A ground-satellite study of wave-particle correlations. Journal of Geophysical Research. 86:37-53.
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1981.
The influence of localized precipitation-induced D-region ionization enhancements on subionospheric VLF propagation. Geophysical Research Letters. 9:563-566.
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1982.
A multiple-mode three-dimensional model of VLF propagation in the earth-ionosphere waveguide in the presence of localized D region disturbances. Journal of Geophysical Research. 98:1705-1717.
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1993.
Particle precipitation induced by short-duration VLF waves in themagnetosphere. Journal of Geophysical Research. 87:6243-6264.
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1982.
Pitch angle scattering of energetic particles by oblique whistler waves. Geophysical Research Letters. 18:49-52.
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1991.
Quasi-relativistic electron precipitation due to interactions with coherent VLF waves in the magnetosphere. Journal of Geophysical Research. 88:318-328.
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1983.
Recent research on magnetospheric wave-particle interactions. National Institute Polar Research Memoirs. 38:83-98.
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1985.
Remote sensing of the magnetospheric plasma by means of whistler mode signals. Reviews of Geophysics. 26:535-549.
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1988.
Subionospheric VLF/LF phase perturbations produced by lightning-whistler induced particle precipitation. Journal of Geophysical Research. 90:7457-7469.
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1985.
Whistler-mode chorus and morningside aurorae. Geophysical Research Letters. 19:653-656.
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1992.