Static Observers in Curved Spaces and Non-inertial Frames in Minkowski Spacetime
arXiv:1004.3937 · doi:10.1007/s10714-010-1086-1
Abstract
Static observers in curved spacetimes may interpret their proper acceleration as the opposite of a local gravitational field (in the Newtonian sense). Based on this interpretation and motivated by the equivalence principle, we are led to investigate congruences of timelike curves in Minkowski spacetime whose acceleration field coincides with the acceleration field of static observers of curved spaces. The congruences give rise to non-inertial frames that are examined. Specifically we find, based on the locality principle, the embedding of simultaneity hypersurfaces adapted to the non-inertial frame in an explicit form for arbitrary acceleration fields. We also determine, from the Einstein equations, a covariant field equation that regulates the behavior of the proper acceleration of static observers in curved spacetimes. It corresponds to an exact relativistic version of the Newtonian gravitational field equation. In the specific case in which the level surfaces of the norm of the acceleration field of the static observers are maximally symmetric two-dimensional spaces, the energy-momentum tensor of the source is analyzed.
28 pages, 4 figures.
References in corpus (8)
- Charged Particles and the Electro-Magnetic Field in Non-Inertial Frames of Minkowski Spacetime: I. Admissible 3+1 Splittings of Minkowski Spacetime and the Non-Inertial Rest Frames
- Emission vs Fermi coordinates: applications to relativistic positioning systems
- Simultaneity, radar 4-coordinates and the 3+1 point of view about accelerated observers in special relativity
- The Minkowski metric in non-inertial observer radar coordinates
- A New Kind of Uniformly Accelerated Reference Frames
- Thermodynamic Properties of Spherically-Symmetric, Uniformly-Accelerated Reference Frames
- A globally well-behaved simultaneity connection for stationary frames in the weak field limit
- Locality hypothesis and the speed of light