Author:
Song P.,Tu J.,Galkin I. A.,McCollough J. P.,Ginet G. P.,Johnston W. R.,Su Y.-J.,Starks M. J.,Reinisch B. W.,Inan U. S.,Lauben D. S.,Linscott I. R.,Farrell W. M.,Allgeier S.,Lambour R.,Schoenberg J.,Gillespie W.,Stelmash S.,Roche K.,Sinclair A. J.,Sanchez J. C.
Abstract
AbstractSpace weather phenomena can threaten space technologies. A hazard among these is the population of relativistic electrons in the Van Allen radiation belts. To reduce the threat, artificial processes can be introduced by transmitting very-low-frequency (VLF) waves into the belts. The resulting wave-particle interactions may deplete these harmful electrons. However, when transmitting VLF waves in space plasma, the antenna, plasma, and waves interact in a manner that is not well-understood. We conducted a series of VLF transmission experiments in the radiation belts and measured the power and radiation impedance under various frequencies and conditions. The results demonstrate the critical role played by the plasma-antenna-wave interaction around high-voltage space antennae and open the possibility to transmit high power in space. The physical insight obtained in this study can provide guidance to future high-power space-borne VLF transmitter developments, laboratory whistler-mode wave injection experiments, and the interpretation of various astrophysical and optical phenomena.
Funder
Air Force Research Laboratory
Publisher
Springer Science and Business Media LLC
Cited by
4 articles.
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