Saturn's Small‐Scale Winds Revealed by Its High‐Degree Gravity Field
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Engineering topics
Publications and source records attributed to M. Parisi.
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The signal-to-noise ratio received at Earth is typically larger than 10 dB-Hz for radio tracking of a spacecraft in deep space, allowing a phase-locked loop to execute reliable carrier tracking. Recently, missions have been proposed to utilize low-gain antennas for Doppler tracking where the signal-to-noise ratio may be at the single-digit (dB-Hz) level. In this work, we discuss spacecraft Doppler tracking at these low signal-to-noise ratios through an analysis of thermal noise on the radio link, results from ground testing with the Deep Space Network, and demonstrations with an active spacecraft. We show that by utilizing an open-loop receiver to capture the carrier signal and by applying post-processing techniques, radio data with the signal-to-noise ratio as low as 4 dB-Hz can be used to derive Doppler data with precision sufficient for tracking a spacecraft in deep space.
This chart set describes data and analysis underlying the risk of reduced ground support for long duration, deep space missions, starting with Lunar surface stays and progressing to a crewed mission to Mars. The functional impacts for different comm delay regimes are described, along with a specific and generalized anomaly scenario to demonstrate the impact of reduced ground support to onboard operations.
This presentation will summarize findings of the NESC's 2021 study on the safety risks for human exploration beyond low-Earth orbit focusing on the challenges of reduced ground support with distance from Earth.