Direct Distance Measurements to Superluminal Radio Sources
arXiv:astro-ph/0001298 · doi:10.1086/308884
Abstract
We present a new technique for directly measuring the distances to superluminal radio sources. By comparing the observed proper motions of components in a parsec scale radio jet to their measured Doppler factors, we can deduce the distance to the radio source independent of the standard rungs in the cosmological distance ladder. This technique requires that the jet angle to the line of sight and the ratio of pattern to flow velocities are sufficiently constrained. We evaluate a number of possibilities for constraining these parameters and demonstrate the technique on a well defined component in the parsec scale jet of the quasar 3C279 (z = 0.536). We find an angular size distance to 3C279 of greater than 1.8 (+0.5,-0.3) n^{1/8} Gpc, where n is the ratio of the energy density in the magnetic field to the energy density in the radiating particles in that jet component. For an Einstein-de Sitter Universe, this measurement would constrain the Hubble constant to be H < 65 n^{-1/8} km/s/Mpc at the two sigma level. Similar measurements on higher redshift sources may help discriminate between cosmological models.
18 pages, 8 figures, to be published in The Astrophysical Journal
References in corpus (1)
Cited by in corpus (8)
- Parsec-Scale Blazar Monitoring: Proper Motions
- Parsec-Scale Blazar Monitoring: Flux and Polarization Variability
- Full Polarization Spectra of 3C 279
- Redshift-Independent Distances in the NASA/IPAC Extragalactic Database: Methodology, Content and Use of NED-D
- Jet Collimation in Action: Re-alignment on Kiloparsec Scales in 3C279
- Detection of Optical Synchrotron Emission from the Radio Jet of 3C279
- Multiwavelength Observations of Relativistic Jets from General Relativistic Magnetohydrodynamic Simulations
- Formation of the large-scale structure of the Universe