Probing the spinning of the massive black hole in the Galactic Center via pulsar timing: A Full Relativistic Treatment
arXiv:1709.08341 · doi:10.3847/1538-4357/aa8f47
Abstract
Pulsars around the Massive Black Hole (MBH) in the Galactic Center (GC) are expected to be revealed by the incoming facilities (e.g., the Square Kilometre Array). Under a full relativistic framework with the pulsar approximated as a test particle, we investigate the constraints on the spinning of the MBH by monitoring the timing of surrounding pulsars. For GC pulsars orbiting closely around the MBH (e.g., AU), we find that full relativistic treatment in modeling accurately their timing signals can be necessary, as the relativistic signals are orders of magnitude larger than the time of arrival measurement accuracies. Although usually there are near-degeneracies among MBH spin parameters, the constraints on the spinning of the MBH are still very tight. By continuously monitoring a normal pulsar in orbits with a period of yr and an eccentricity of under timing precision of ms, within yr the spin magnitude and the orientations of the GC MBH can be constrained with error of and , respectively. Even for pulsars in orbits similar to the detected star S2/S0-2 or S0-102, we find that the spinning of the MBH can still be constrained within yr, with the most significant constraints provided near the pericenter passage. If the proper motion of the pulsars with astrometric accuracy of as can also be collected along with the timing measurement, then the position, velocity, mass and the distance to the Solar System of the MBH can be constrained about as, asyr, and pc, respectively.
Accepted for publication in the Astrophysical Journal
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