Hybrid electrostatic-atomic accelerometer for future space gravity missions
arXiv:2206.00634 · doi:10.3390/rs14143273
Abstract
Long term observation of temporal Earth's gravity field with enhanced temporal and spatial resolution is a major objective for future satellite gravity missions. Improving the performance of the accelerometers present in such missions is one of the main path to explore. In this context, we propose to study an original concept of a hybrid accelerometer associating a state-of-the-art electrostatic accelerometer (EA) and a promising quantum sensor based on cold atom interferometry. To assess the performance potential of such instrument, numerical simulations have been performed to determine its impact in term of gravity field retrieval. Taking advantage of the long term stability of the cold atom interferometer (CAI), it has been shown that the reduced drift of the hybrid sensor could lead to improved gravity field retrieval. Nevertheless this gain vanishes once temporal variations of the gravity field and related aliasing effects are taken into account. Improved de-aliasing models or some specific satellite constellations are then required to maximize the impact of the accelerometer performance gain. To evaluate the achievable acceleration performance in orbit, a numerical simulator of the hybrid accelerometer has been developed and preliminary results are given. The instrument simulator has been in part validated by reproducing the performance achieved with a hybrid lab prototype operating on ground. The problematic of satellite rotation impact on the CAI has been also investigated both with instrument performance simulations and experimental demonstrations. It has been shown that the proposed configuration, where the EA's proof-mass acts as the reference mirror for the CAI, seems a promising approach to allow the mitigation of satellite rotation. A preliminary design has been elaborated along with a preliminary error, mass, volume and electrical power consumption budget.
47 pages, 31 figures
References in corpus (19)
- Measurement of the fine-structure constant as a test of the Standard Model
- Precision Measurement of the Newtonian Gravitational Constant Using Cold Atoms
- Interferometry with Bose-Einstein Condensates in Microgravity
- An Atomic Gravitational Wave Interferometric Sensor (AGIS)
- On orbit performance of the GRACE Follow-On Laser Ranging Interferometer
- Limits to the sensitivity of a low noise compact atomic gravimeter
- Dual Matter-Wave Inertial Sensors in Weightlessness
- Absolute airborne gravimetry with a cold atom sensor
- Hybridizing matter-wave and classical accelerometers
- Enhancing the area of a Raman atom interferometer using a versatile double-diffraction technique
- Operating an atom interferometer beyond its linear range
- A spaceborne gravity gradiometer concept based on cold atom interferometers for measuring Earth's gravity field
- The effect of wavefront aberrations in atom interferometry
- Off-resonant Raman transitions impact in an atom interferometer
- A high-flux BEC source for mobile atom interferometers
- Design of a dual species atom interferometer for space
- PHARAO Laser Source Flight Model: Design and Performances
- Gravity Field Mapping Using Laser Coupled Quantum Accelerometers in Space
- Suppression of Coriolis error in weak equivalence principle test using ^[85]Rb-^[87]Rb dual-species atom interferometer