DocumentCode
1348514
Title
Modeling the Configuration of HF Electrical Antennas for Deep Bistatic Subsurface Sounding
Author
Biancheri-Astier, Marc ; Ciarletti, Valérie ; Reineix, Alain ; Corbel, Charlotte
Author_Institution
Centre Nat. de la Rech. Sci., Univ. Versailles St.-Quentin, Guyancourt, France
Volume
49
Issue
3
fYear
2011
fDate
3/1/2011 12:00:00 AM
Firstpage
1082
Lastpage
1091
Abstract
In the frame of the European Space Agency´s 2016 ExoMars mission, the Electromagnetic Investigation of the SubSurface (EISS) ground-penetrating radar has been designed and developed to perform deep soundings of the Martian subsurface from the surface. The EISS is designed to take advantage of the potential for bistatic radar investigations of the Martian subsurface between the fixed station (Lander) and the mobile platform (rover) and to characterize the 3-D structure and stratigraphy of the subsurface at depths ranging from 100 m to a few kilometers out to a 1-km radius around the lander. The EISS makes use of an electric dipole antenna made of two identical 35-m resistively loaded monopoles to transmit (and also receive in a monostatic mode) the high-frequency signal. However, the EISS´s most innovative capability is its potential for bistatic operation, made possible by the accommodation of a small magnetic sensor on the rover (as initially planned for the ExoMars mission) which can measure the magnetic field (all three components) of the received waves whatever the direction and orientation of the rover. The aim of this paper is to show that the two monopoles of the antenna must be deployed on the surface in nearly opposite directions but not aligned to ensure good volume coverage around the transmitter. This paper is based on Finite Difference in Time Domain (FDTD) electromagnetic simulations. The simulated data have been used to study the impact of the angle between these two monopoles on the instrument performance.
Keywords
Mars; antenna radiation patterns; astronomical instruments; dipole antennas; finite difference time-domain analysis; ground penetrating radar; planetary interiors; planetary remote sensing; planetary rovers; radar antennas; radioastronomical techniques; remote sensing by radar; EISS ground penetrating radar; Electromagnetic Investigation of the Subsurface; European Space Agency; ExoMars mission; FDTD electromagnetic simulations; HF electrical antenna; Martian lander platform; Martian rover platform; Martian subsurface 3D structure; Martian subsurface deep sounding; Martian subsurface stratigraphy; antenna configuration modeling; bistatic operation; bistatic radar investigation; deep bistatic subsurface sounding; electric dipole antenna; finite difference in time domain simulation; high frequency signal transmission; magnetic sensor; monostatic mode reception; resistively loaded monopoles; Angle of antennas; Mars; bistatic; current sources; deep sounding; ground-penetrating radar (GPR); loaded electrical antennas; modeling; reflected wave; subsurface; wave propagation;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2010.2070513
Filename
5599860
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