G43B:
Relativistic Geodesy and Quantum Sensors for Geodesy I Posters

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Session ID#: 12865

Session Description:
Relativistic geodesy finds very strong interest today. It is a field where fundamental progress in metrology and sensors – including quantum metrology and quantum sensors – together with modeling advances enable new and very relevant applications. Optical atomic clocks achieve relative frequency accuracies in the 10-18 range, and long-distance frequency transfer has even been demonstrated with 10-19 accuracy. These techniques open the perspective for tying potential and height differences to an atomic reference, possibly in global geodetic networks. Quantum inertial sensors based on atom interferometry are very promising with respect to compactness, accuracy and versatility for geodetic applications on ground and in space. Complementarily, the space missions LISA Pathfinder, Microscope and GRACE Follow-On are achieving major advances in precision ranging and accelerometry. The session provides a forum for exchange on theory, sensors and applications for gravity field determination and navigation.
Primary Convener:  Jakob Flury, Leibniz University of Hannover, Hannover, Germany
Conveners:  Jun Ye, JILA, NIST and University of Colorado, Boulder, CO, United States, Mark Kasevich, Stanford University, Stanford, CA, United States and Pacôme Delva, SYRTE, Observatoire de Paris, Paris, France
Chairs:  Jakob Flury, Leibniz University of Hannover, Hannover, Germany and Pacôme Delva, SYRTE, Observatoire de Paris, Paris, France
OSPA Liaison:  Pacôme Delva, SYRTE, Observatoire de Paris, Paris, France
Index Terms:

1214 Geopotential theory and determination [GEODESY AND GRAVITY]
1229 Reference systems [GEODESY AND GRAVITY]
1244 Standards and absolute measurements [GEODESY AND GRAVITY]
1294 Instruments and techniques [GEODESY AND GRAVITY]

Abstracts Submitted to this Session:

Guillaume Lion1,2, Isabelle Panet3, Peter Wolf4, Christine Guerlin4,5, Sébastien Bize4 and Pacôme Delva4, (1)Université de Paris, Institut de physique du globe de Paris, CNRS, IGN, GEODESIE, Paris, France, (2)ENSG-Géomatique, IGN, Marne-la-Vallée, France, (3)IGN Institut National de l'Information Géographique et Forestière, LAREG, Univ Paris Diderot, Paris Cedex 13, France, (4)LNE–SYRTE, Observatoire de Paris, CNRS (UMR8630), UPMC, SYRTE, Paris, France, (5)Laboratoire Kastler Brossel, ENS-PSL Research University, CNRS, UPMC-Sorbonne Universités, Collège de France, Paris, France
Elena M. Mazurova1,2, Sergei M Kopeikin1,3 and Alexander P. Karpik2, (1)University of Missouri, Department of Physics & Astronomy, Columbia, MO, United States, (2)SSUGaTech, Department of Physical Geodesy, Novosibirsk, Russia, (3)SSUGaTech, Department of Physical Geodesy, Novosibirsk, Russia
Liliane Biskupek and Enrico Mai, Leibniz University of Hannover, Institute of Geodesy, Hannover, Germany
Dennis Schlippert1, Jakob Flury2, Wolfgang Ertmer1 and Ernst M Rasel1, (1)Leibniz University of Hannover, Institut fuer Quantenoptik, Hannover, Germany, (2)Leibniz University of Hannover, Hannover, Germany
Manuel Schilling1, Dennis Schlippert2, Christian Schubert2, Etienne Wodey2, Wolfgang Ertmer2, Ernst M Rasel2 and Juergen Mueller1, (1)Leibniz University of Hannover, Institut für Erdmessung, Hannover, Germany, (2)Leibniz University of Hannover, Institut fuer Quantenoptik, Hannover, Germany
Felipe Guzman, University of Bremen, ZARM - Center of Applied Space Technology and Microgravity, Bremen, Germany
Bernard Foulon1, Damien Boulanger1, Vincent Lebat1, Alexandre Bresson2 and Bruno Christophe1, (1)ONERA, the French Aerospace Lab, Châtillon, France, (2)ONERA French Aerospace Lab, Palaiseau Cedex, France

See more of: Geodesy