Airborne absolute gravimetry with a quantum sensor, comparison with classical technologies
Abstract
We report an airborne gravity survey with an absolute gravimeter based on atom interferometry and two relative gravimeters: a classical LaCoste\&Romberg (L\&R) and a novel iMAR strap-down Inertial Measurement Unit (IMU). We estimated measurement errors for the quantum gravimeter ranging from 0.6 to 1.3 mGal depending on the flight conditions and the filtering used. Similar measurement errors are obtained with iMAR strapdown gravimeter but the long term stability is five times worse. The traditional L\&R platform gravimeter shows larger measurement errors (3 - 4 mGal). Airborne measurements have been compared to marine, land and altimetry derived gravity data. We obtain a good agreement for the quantum gravimeter with standard deviations and means on differences below or equal to 2 mGal. This study confirms the potential of quantum technology for absolute airborne gravimetry which is particularly interesting for mapping shallow water or mountainous areas and for linking ground and satellite measurements with homogeneous absolute referencing.
Keywords
Cite
@article{arxiv.2210.07865,
title = {Airborne absolute gravimetry with a quantum sensor, comparison with classical technologies},
author = {Yannick Bidel and Nassim Zahzam and Alexandre Bresson and Cédric Blanchard and Alexis Bonnin and Jeanne Bernard and Malo Cadoret and Tim Enzlberger Jensen and René Forsberg and Corinne Salaun and Sylvain Lucas and Marie Francoise Lequentrec-Lalancette and Didier Rouxel and Germinal Gabalda and Lucia Seoane and Dinh Toan Vu and Sylvain Bonvalot},
journal= {arXiv preprint arXiv:2210.07865},
year = {2023}
}