DocumentCode
997815
Title
VLF/ELF input impedance of an arbitrarily oriented loop antenna in a cold collisionless multicomponent magnetoplasma
Author
Wang, Thomas N C ; Bell, Timothy F.
Author_Institution
Stanford Research Institute, Menlo Park, CA, USA
Volume
20
Issue
3
fYear
1972
fDate
5/1/1972 12:00:00 AM
Firstpage
394
Lastpage
398
Abstract
A study is made of the input impedance
of a small strip-loop antenna with arbitrary orientation in a cold collisionless uniform multicomponent magnetoplasma. Assuming a uniform current distribution, an integral expression for
is derived which is valid for arbitrary values of driving frequency, plasma composition and density, loop orientation angle
, and static magnetic field strength. The integral expression is evaluated numerically for the VLF/ELF range in a plasma modeled upon the inner magnetosphere. Approximate closed-form expressions for
are also developed. It is found that the loop VLF/ELF input reactance is essentially identical to its free space self inductance. Also the loop radiation resistance is found to be a strong function of
for frequencies near the lower-hybrid-resonance frequency or below the proton gyrofrequency. In addition it is found that for small loops a second-order quasi-static theory correctly predicts
over much of the VLF/ELF range.
of a small strip-loop antenna with arbitrary orientation in a cold collisionless uniform multicomponent magnetoplasma. Assuming a uniform current distribution, an integral expression for
is derived which is valid for arbitrary values of driving frequency, plasma composition and density, loop orientation angle
, and static magnetic field strength. The integral expression is evaluated numerically for the VLF/ELF range in a plasma modeled upon the inner magnetosphere. Approximate closed-form expressions for
are also developed. It is found that the loop VLF/ELF input reactance is essentially identical to its free space self inductance. Also the loop radiation resistance is found to be a strong function of
for frequencies near the lower-hybrid-resonance frequency or below the proton gyrofrequency. In addition it is found that for small loops a second-order quasi-static theory correctly predicts
over much of the VLF/ELF range.Keywords
ELF antennas; Loop antennas; Plasma-covered antennas; VLF antennas; Closed-form solution; Current distribution; Frequency; Geophysical measurement techniques; Ground penetrating radar; Impedance; Inductance; Magnetic fields; Magnetosphere; Plasma density;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.1972.1140212
Filename
1140212
Link To Document