Title :
Radio Science measurements using phase modulated optical links
Author :
Divsalar, Dariush ; Vilnrotter, Victor ; Asmar, Sami ; Kar-Ming Cheung
Author_Institution :
Jet Propulsion Lab., California Inst. of Technol., Pasadena, CA, USA
Abstract :
Radio Science experiments currently rely on unmodulated continuous wave RF signal carrier for spectral purity and maximized signal-to-noise ratio. This requires missions to carefully schedule them away from periods of high rate telemetry. In the era of optical communications, currently designed systems experience the same problem. In this paper, a data processing architecture is derived that will yield high-accuracy link science type of information on the ground from readily transmitted communication signals coming from space assets, through optical links. This technique is intended to save power, bandwidth and scheduling demands on the spacecraft. Our proposed technical approach is applicable to a phase modulated laser thus providing an architectural improvement to present state-of-the-art optical communication systems utilized by NASA as well as to future systems. The approach is to, first, obtain the achievable performance of Radio Science measurements from the received optical telemetry signals. This extends our previous results presented on Radio Science measurements for suppressed carrier RF signals. Secondly, a practical system is proposed that approaches the ultimate theoretical performance for estimating the amplitude, phase, and frequency variations due to the changes in the planet atmosphere. For optical links, our previous results to phase modulated CW laser communications are extended. The same information required for radio science data can be extracted by using either differential methods of encoding or phase modulated orthogonal signals and at the optical receiver a non-coherent local laser and an array of photon detectors are used. The performance of these phase modulated schemes is analyzed.
Keywords :
frequency measurement; laser beam applications; optical fibre telemetry; optical links; optical modulation; optical receivers; phase measurement; phase modulation; photodetectors; space communication links; NASA; amplitude variation estimation; bandwidth saving; data processing architecture; frequency variation estimation; high-accuracy link science type; maximized signal-to-noise ratio; noncoherent local laser; optical communication systems; optical receiver; optical telemetry signals; phase modulated laser; phase modulated optical links; phase modulated orthogonal signals; phase variation estimation; photon detector array; planet atmosphere; power saving; radio science measurements; scheduling demand saving; space assets; spacecraft; spectral purity signal-to-noise ratio; unmodulated continuous wave RF signal carrier; Atmospheric measurements; Extraterrestrial measurements; Lasers; Optical modulation; Optical receivers; Optical variables measurement; Phase modulation;
Conference_Titel :
Aerospace Conference, 2015 IEEE
Conference_Location :
Big Sky, MT
Print_ISBN :
978-1-4799-5379-0
DOI :
10.1109/AERO.2015.7119043