Non-geodesic circular motion of massive spinning test bodies around a Schwarzschild field in the Lagrangian theory
Author
dc.contributor.author
Hojman Guiñerman, Sergio
Author
dc.contributor.author
Asenjo, Felipe
Admission date
dc.date.accessioned
2019-05-31T15:21:07Z
Available date
dc.date.available
2019-05-31T15:21:07Z
Publication date
dc.date.issued
2018
Cita de ítem
dc.identifier.citation
European Physical Journal C, Volumen 78, Issue 10, 2018
Identifier
dc.identifier.issn
14346052
Identifier
dc.identifier.issn
14346044
Identifier
dc.identifier.other
10.1140/epjc/s10052-018-6341-8
Identifier
dc.identifier.uri
https://repositorio.uchile.cl/handle/2250/169509
Abstract
dc.description.abstract
Recent interest on studying possible violations
of the Equivalence Principle has led to the development of
space satellite missions testing it for bodies moving on circular orbits around Earth. This experiment establishes that
the validity of the equivalence principle is independent of
the composition of bodies. However, the internal degrees of
freedom of the bodies (such as spin) were not taken into
account. In this work, it is shown exactly that the circular
orbit motion of test bodies does present a departure from
geodesic motion when spin effects are not negligible. Using
a Lagrangian theory for spinning massive bodies, an exact
solution for their circular motion is found showing that the
non-geodesic behavior manifests through different tangential velocities of the test bodies, depending on the orientation
of its spin with respect to the total angular momentum of
the satellite. Besides, for circular orbits, spinning test bodies
present no tangential acceleration. We estimate the difference of the two possible tangential velocities for the case of
circular motion of spinning test bodies orbiting Earth.