DocumentCode
158193
Title
Basic radio interferometry for future lunar missions
Author
Aminaei, Amin ; Wolt, Marc Klein ; Chen, Luo-nan ; Bronzwaer, Thomas ; Pourshaghaghi, Hamid Reza ; Bentum, Mark J. ; Falcke, H.
Author_Institution
Dept. of Astrophys., Radboud Univ. Nijmegen, Nijmegen, Netherlands
fYear
2014
fDate
1-8 March 2014
Firstpage
1
Lastpage
19
Abstract
In light of presently considered lunar missions, we investigate the feasibility of the basic radio interferometry (RIF) for lunar missions. We discuss the deployment of two-element radio interferometer on the Moon surface. With the first antenna element is envisaged to be placed on the lunar lander, the second antenna element is either ejected from the lander onto the lunar surface or is placed on a rover. Such an experiment will examine the radio communication on the Moon surface and will test the basic RIF requirements such as phase stability in the lunar environment. This is a necessary step for development of future large arrays on the Moon. In addition, this first ever in-situ lunar RIF would provide a unique degree-resolution of a radio sky map at lower frequencies, which are not accessible from the Earth. The expected results such as the spectral flux density and the spatial resolution of the radio sky map will be presented for lunar lander-rover experiment. As an extended scenario, the RIF using the multiple antennas onboard the lunar/(Earth´s) orbiter satellites are introduced.
Keywords
antenna arrays; lunar surface; planetary landers; planetary rovers; radioastronomy; radiowave interferometry; antenna element; lunar environment phase stability; lunar lander-rover experiment; lunar missions; lunar orbiter satellites; lunar surface; radio communication; radio interferometry; radio sky map degree-resolution; spectral flux density; two-element radio interferometer; Antennas; Earth; Moon; Plasmas; Radio interferometry; Sun; Terrestrial atmosphere;
fLanguage
English
Publisher
ieee
Conference_Titel
Aerospace Conference, 2014 IEEE
Conference_Location
Big Sky, MT
Print_ISBN
978-1-4799-5582-4
Type
conf
DOI
10.1109/AERO.2014.6836271
Filename
6836271
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