By John R. Winckler (auth.), Bjørn Grandal (eds.)
These complaints are established upon the invited assessment papers and the learn notes offered on the NATO complex examine Institute on "Artificial Particle Beams in area Plasma reports" held at Geilo, Norway April 21-26, 1981. within the final decade a few study teams have hired man made particle beams either from sounding rockets and satellites with the intention to examine a number of ionospheric and magnetospheric phenomena. although, the synthetic particle beams utilized in this fashion have given upward push to a few difficult results. therefore, rather than being only a explore for learning the ambient magnetosphere, the synthetic particle beams have awarded a wealthy number of plasma physics difficulties, in parti~ular quite a few discharge phenomena, which in themselves are invaluable of a cautious examine. The experimental reports in area utilizing man made particle beams have in flip given upward push to either theore tical and laboratory reports. within the laboratory experi ments designated realization has been paid to the matter of making spacelike stipulations within the vacuum chamber. The theoretical. paintings has addressed the query of beam plasma-neutral interplay with emphasis at the wave iteration and the changed strength distributions of the charged debris. Numerical simulations were used largely. With the arrival of the gap trip within which numerous synthetic particle beam experiments are deliberate for the 1980's, there's a starting to be curiosity in such experiments. in addition, there's a desire for coordinating those reviews, either in area and within the laboratory.
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The Hess Kaui experiment (Davis et. , 1980) was remarkable in that an auroral streak was observed at the conjugate point by a high-flying aircraft using TV, after a distance of several thousand kilometers from the injection point. In the ZARNITZA experiments (Cambou et. , 1975), and the O'Neil experiments (O'Neil et. al.. 1979) the luminosity occurred in the region near the rocket, showing a field-aligned streak attached to the rocket as well as a rocket discharge glow and various chemi-Iuminescence effects.
Bien, D. A. T. Stair. , Summarized Results of the Artificial Auroral Experiment Precede, J. Geophys. , 83, 3273. 1978. O'Neil. P. R. Huppi, Auroral 0 (S) Production and Loss Processes: GroundBased Measurements of the Artificial Auroral Experiment Precede, J. Geophys. Res .. 84, 823 1979. A. N. B. N. Lankin. K. Nazarenko. D. V. V. 1. N. K. Mokhnach. V. 1. F. Pazeev, "A Powerful Electron Accelerator for Active Space Experi- ments". Space Science Instrumentation. 4, (2-3). 131. 1978. , Theory and Design of Electron Guns.
Geophys. Res .. 84, 823 1979. A. N. B. N. Lankin. K. Nazarenko. D. V. V. 1. N. K. Mokhnach. V. 1. F. Pazeev, "A Powerful Electron Accelerator for Active Space Experi- ments". Space Science Instrumentation. 4, (2-3). 131. 1978. , Theory and Design of Electron Guns. D. vanNostrand Company. Inc .. 1949. F. Zarnitsky Electron Precipitation in Magnetically Conjugated Region in the First Araks Experiment from Radar Data, Ann. , 36. 297. 1980. Roeder. R. Sheldon. R. Benbrook. A. Bering. and H. Leverenz.
Artificial Particle Beams in Space Plasma Studies by John R. Winckler (auth.), Bjørn Grandal (eds.)