This paper proposes a position fixing method for autonomous navigation using partial gravity gradient solutions from cold atom interferometers. Cold atom quantum sensors can provide ultra-precise measurements of inertial quantities, such as acceleration and rotation rates. However, we investigate the use of pairs of cold atom interferometers to measure the local gravity gradient and to provide position information by referencing these measurements against a suitable database. Simulating the motion of a vehicle, we use partial gravity gradient measurements to reduce the positional drift associated with inertial navigation systems. Using standard open source global gravity databases, we show stable navigation solutions for trajectories of ove...
International audienceWe demonstrate a proof-of-principle of direct Earth gravity-gradient measureme...
We present an alternative technique for estimating the response of a cold atom interferometer (CAI)....
Abstract Satellite gravity missions, like GRACE and GRACE Follow-On, successfully map the Earth’s gr...
This paper proposes a position fixing method for autonomous navigation using partial gravity gradie...
Inertial sensing based on cold atom technologies has been proposed as a possible answer to the limit...
This article discusses chances and challenges of using cold atom interferometers in inertial navigat...
Quantum sensors based on atom interferometers can provide measurements of inertial quantities with u...
Positioning currently relies heavily on Global Navigation Satellite Systems (GNSS). Combined with c...
This paper explores a way of combining conventional inertial sensors with cold atom interferometers ...
We study a space-based gravity gradiometer based on cold atom interferometry and its potential for t...
The interest in a higher spatial and temporal resolution of the Earth's gravity field is large in va...
Spacecraft navigation is a critical component of any space mission. Space navigation uses on-board s...
In recent years, an innovative mission concept has been proposed for gravity measurements with the a...
International audienceWe demonstrate a proof-of-principle of direct Earth gravity-gradient measureme...
We present an alternative technique for estimating the response of a cold atom interferometer (CAI)....
Abstract Satellite gravity missions, like GRACE and GRACE Follow-On, successfully map the Earth’s gr...
This paper proposes a position fixing method for autonomous navigation using partial gravity gradie...
Inertial sensing based on cold atom technologies has been proposed as a possible answer to the limit...
This article discusses chances and challenges of using cold atom interferometers in inertial navigat...
Quantum sensors based on atom interferometers can provide measurements of inertial quantities with u...
Positioning currently relies heavily on Global Navigation Satellite Systems (GNSS). Combined with c...
This paper explores a way of combining conventional inertial sensors with cold atom interferometers ...
We study a space-based gravity gradiometer based on cold atom interferometry and its potential for t...
The interest in a higher spatial and temporal resolution of the Earth's gravity field is large in va...
Spacecraft navigation is a critical component of any space mission. Space navigation uses on-board s...
In recent years, an innovative mission concept has been proposed for gravity measurements with the a...
International audienceWe demonstrate a proof-of-principle of direct Earth gravity-gradient measureme...
We present an alternative technique for estimating the response of a cold atom interferometer (CAI)....
Abstract Satellite gravity missions, like GRACE and GRACE Follow-On, successfully map the Earth’s gr...