Published August 1988 | Version v1
Journal article

Plasma instabilities stimulated by HF transmitters in space

  • 1. NASA, Goddard Space Flight Center, Greenbelt, MD (USA)

Description

Diffuse incoherent signal returns are often observed on Alouette and ISIS topside ionograms in addition to coherent echoes of electromagnetic and electrostatic waves. These diffuse signals, which at times can be the dominant features on topside ionograms, have been attributed to sounder-induced temperature anisotropies which drive the Harris instability. Previous theoretical investigations were based on the electrostatic approximation to the dispersion equation. The present paper will present calculations indicating that when the electromagnetic terms are retained in the dispersion equation and when the sounder-stimulated perpendicular electron temperature approaches 1 keV, then the whistler mode can have a temporal growth rate larger than the electrostatic electron cyclotron harmonic wave mode central to the diffuse resonance problem. Present sounders lack the power and antenna lengths to generate whistler mode waves in this manner. In addition, such waves would have large group velocities and would quickly leave the vicinity of the sounder. Experiments to investigate the wave growth, propagation, and damping of such stimulated waves are planned for the 1990s using a highly flexible sounder on the Space Shuttle and a receiver on a subsatellite. 30 references

Additional details

Publishing Information

Journal Title
Radio Science
Journal Volume
23
Series
Radio Sci.
Journal Page Range
585-590
ISSN
0048-6604
CODEN
RASCA

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
20025797
Subject category
S58: GEOSCIENCES;
Descriptors DEI
ANISOTROPY; DISTURBANCES; IONOSONDES; IONOSPHERE; PLASMA; PLASMA INSTABILITY; PLASMA WAVES; WAVE PROPAGATION; WHISTLERS
Descriptors DEC
EARTH ATMOSPHERE; ELECTROMAGNETIC RADIATION; ELECTRONIC EQUIPMENT; EQUIPMENT; INSTABILITY; NOISE; RADIATIONS; RADIO EQUIPMENT; RADIO NOISE; RADIOWAVE RADIATION