Enhancing the precision limits of interferometric satellite geodesy missions
arXiv:2109.07666 · doi:10.1038/s41526-022-00204-9
Abstract
Satellite geodesy uses the measurement of the motion of one or more satellites to infer precise information about the Earth's gravitational field. In this work, we consider the achievable precision limits on such measurements by examining approximate models for the three main noise sources in the measurement process of the current Gravitational Recovery and Climate Experiment (GRACE) Follow-On mission: laser phase noise, accelerometer noise and quantum noise. We show that, through time-delay interferometry, it is possible to remove the laser phase noise from the measurement, allowing for almost three orders of magnitude improvement in the signal-to-noise ratio. Several differential mass satellite formations are presented which can further enhance the signal-to-noise ratio through the removal of accelerometer noise. Finally, techniques from quantum optics have been studied, and found to have great promise for reducing quantum noise in other alternative mission configurations. We model the spectral noise performance using an intuitive 1D model and verify that our proposals have the potential to greatly enhance the performance of near-future satellite geodesy missions.
Published in NPJ Microgravity
References in corpus (8)
- Satellite-to-ground quantum key distribution
- Optimal Quantum Phase Estimation
- Progress in satellite quantum key distribution
- Quantum Metrology for Gravitational Wave Astronomy
- Towards a global quantum network
- A Quantum-Enhanced Prototype Gravitational-Wave Detector
- On orbit performance of the GRACE Follow-On Laser Ranging Interferometer
- A Simplified Gravitational Reference Sensor for Satellite Geodesy
Cited by in corpus (4)
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