The Lense-Thirring effect on the Galilean moons of Jupiter
arXiv:2304.02289 · doi:10.3390/universe9070304
Abstract
The perspectives of detecting the general relativistic gravitomagnetic Lense-Thirring effect on the orbits of the Galilean moons of Jupiter induced by the angular momentum of the latter are preliminarily investigated. Numerical integrations over one century show that the expected gravitomagnetic signatures of the directly observable right ascension and declination of the satellites are as large as tens of arcseconds for Io, while for Callisto they drop to the level. Major competing effects due to the mismodeling in the zonal multipoles of the Jovian non-spherically symmetric gravity field and in the Jupiter's spin axis should have a limited impact, especially in view of the future improvements in determining such parameters expected after the completion of the ongoing Juno mission in the next few years. On the other hand, the masses of the satellites, responsible of their mutual body perturbations, should be known better than now. Such a task should be accomplished with the future JUICE and Clipper missions to the Jovian system. Present-day accuracy in knowing the orbits of the Jovian Galilean satellites is of the order of 10 milliarcseconds, to be likely further improved thanks to the ongoing re-reduction of old photographic plates. This suggests that, in the next future, the Lense-Thirring effect in the main Jovian system of moons might be detectable with dedicated data reductions in which the gravitomagnetic field is explicitly modeled and solved-for.
LaTex2e, 20 pages, 4 figures, no tables. Refereed version accepted for publication in Universe
References in corpus (7)
- Gravity Probe B: Final Results of a Space Experiment to Test General Relativity
- The Kerr Metric
- Phenomenology of the Lense-Thirring effect in the Solar System
- A gravito-electromagnetic analogy based on tidal tensors
- Lense-Thirring frame dragging induced by a fast-rotating white dwarf in a binary pulsar system
- Constraining the dense matter equation-of-state with radio pulsars
- Decoupled and coupled moons' ephemerides estimation strategies -- Application to the JUICE mission