Gravitational perturbations on local experiments in a satellite : The dragging of inertial frame in the HYPER project
arXiv:gr-qc/0310021 · doi:10.1023/B:GERG.0000010485.62147.0e
Abstract
We consider a nearly free falling Earth satellite where atomic wave interferometers are tied to a telescope pointing towards a faraway star. They measure the acceleration and the rotation relatively to the local inertial frame. We calculate the rotation of the telescope due to the aberrations and the deflection of the light in the gravitational field of the Earth. We show that the deflection due to the quadrupolar momentum of the gravity is not negligible if one wants to observe the Lense-Thirring effect of the Earth. We consider some perturbation to the ideal device and we discuss the orders of magnitude of the phase shifts due to the residual tidal gravitational field in the satellite and we exhibit the terms which must be taken into account to calculate and interpret the full signal. Within the framework of a geometric model, we calculate the various periodic components of the signal which must be analyzed to detect the Lense-Tirring effect. We discuss the results which support a reasonable optimism. As a conclusion we put forward the necessity of a more complete, realistic and powerful model in order to obtain a final conclusion on the theoretical feasibility of the experiment as far as the observation of the Lense-Thirring effect is involved.
Accepted in GRG (vol 36, Feb 2004)
References in corpus (1)
Cited by in corpus (8)
- General Relativistic Effects in Atom Interferometry
- Measuring Gravito-magnetic Effects by Multi Ring-Laser Gyroscope
- Influence of mass multipole moments on the deflection of a light ray by an isolated axisymmetric body
- Light propagation in the field of a moving axisymmetric body: theory and application to JUNO
- Sagnac Effect, Ring Lasers and Terrestrial Tests of Gravity
- A tale of analogies: gravitomagnetic effects, rotating sources, observers and all that
- GINGER
- Tidal gravitational effects in a satellite