The prospects of future satellite gravimetry missions to sustain a continuous and improved observation of the gravitational field have stimulated studies of new concepts of space inertial sensors with potentially improved precision and stability. This is in particular the case for cold-atom interferometry (CAI) gradiometry which is the object of this paper. The performance of a specific CAI gradiometer design is studied here in terms of quality of the recovered gravity field through a closed-loop numerical simulation of the measurement and processing workflow. First we show that mapping the time-variable field on a monthly basis would require a noise level below 5mE /√{Hz } . The mission scenarios are therefore focused on the static field, ...
Cold Atom Interferometer (CAI) accelerometry is proposed for future generations of satellite gravime...
We study a space-based gravity gradiometer based on cold atom interferometry and its potential for t...
MOCASS (Mass Observation with Cold Atom Sensors in Space) is an on-going study project funded by the...
The prospects of future satellite gravimetry missions to sustain a continuous and improved observati...
Cold Atom Interferometry (CAI) has proven to be a very efficient technique to achieve high sensitivi...
Cold Atom Interferometry (CAI) has proven to be a very efficient technique to achieve high sensitivi...
The interest in a higher spatial and temporal resolution of the Earth's gravity field is large in va...
Cold Atom Interferometry (CAI) is a promising new technology for gravity missions, enabling measurem...
International audienceSatellite gravity missions, like GRACE and GRACE Follow-On, successfully map t...
The electrostatic gravity gradiometer has been successfully applied as a core sensor in satellite gr...
10siMOCASS (Mass Observation with Cold Atom Sensors in Space) is a study project funded by the Itali...
Abstract Satellite gravity missions, like GRACE and GRACE Follow-On, successfully map the Earth’s gr...
Cold Atom Interferometer (CAI) accelerometry is proposed for future generations of satellite gravime...
We study a space-based gravity gradiometer based on cold atom interferometry and its potential for t...
MOCASS (Mass Observation with Cold Atom Sensors in Space) is an on-going study project funded by the...
The prospects of future satellite gravimetry missions to sustain a continuous and improved observati...
Cold Atom Interferometry (CAI) has proven to be a very efficient technique to achieve high sensitivi...
Cold Atom Interferometry (CAI) has proven to be a very efficient technique to achieve high sensitivi...
The interest in a higher spatial and temporal resolution of the Earth's gravity field is large in va...
Cold Atom Interferometry (CAI) is a promising new technology for gravity missions, enabling measurem...
International audienceSatellite gravity missions, like GRACE and GRACE Follow-On, successfully map t...
The electrostatic gravity gradiometer has been successfully applied as a core sensor in satellite gr...
10siMOCASS (Mass Observation with Cold Atom Sensors in Space) is a study project funded by the Itali...
Abstract Satellite gravity missions, like GRACE and GRACE Follow-On, successfully map the Earth’s gr...
Cold Atom Interferometer (CAI) accelerometry is proposed for future generations of satellite gravime...
We study a space-based gravity gradiometer based on cold atom interferometry and its potential for t...
MOCASS (Mass Observation with Cold Atom Sensors in Space) is an on-going study project funded by the...