Magnetic fields in quasar cores. II.

被引:70
|
作者
Taylor, GB [1 ]
机构
[1] Natl Radio Astron Observ, Socorro, NM 87801 USA
来源
ASTROPHYSICAL JOURNAL | 2000年 / 533卷 / 01期
关键词
galaxies : active; galaxies : ISM; galaxies : jets; galaxies : nuclei; quasars : general; radio continuum : galaxies;
D O I
10.1086/308666
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Multifrequency polarimetry with the Very Long Baseline Array telescope has revealed absolute Faraday rotation measures (RMs) in excess of 1000 rad m(-2) in the central regions of seven out of eight strong quasars studied (e.g., 3C 273, 3C 279, and 3C 395). Beyond a projected distance of similar to 20 pc, however, the jets are found to have \ RM \ < 100 rad m(-2). Such sharp RM gradients cannot be produced by cluster or galactic-scale magnetic fields, but rather must be the result of magnetic fields organized over the central 1-100 pc. The RMs of the sources studied to date and the polarization properties of BL Lacs, quasars, and galaxies are shown to be consistent so far with the predictions of unified schemes. The direct detection of high RMs in these quasar cores can explain the low fractional core polarizations usually observed in quasars at centimeter wavelengths as the result of irregularities in the Faraday screen on scales smaller than the telescope beam. Variability in the RM of the core is reported for 3C 279 between observations taken 1.5 yr apart, indicating that the Faraday screen changes on that timescale or that the projected superluminal motion of the inner jet components samples a new location in the screen with time. Either way, these changes in the Faraday screen may explain the dramatic variability in core polarization properties displayed by quasars.
引用
收藏
页码:95 / 105
页数:11
相关论文
共 50 条
  • [41] On the origin of magnetic fields in stars - II. The effect of numerical resolution
    Wurster, James
    Bate, Matthew R.
    Price, Daniel J.
    Bonnell, Ian A.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2022, 511 (01) : 746 - 764
  • [42] Doppler Imaging of stellar magnetic fields - II. Numerical experiments
    Kochukhov, O
    Piskunov, N
    ASTRONOMY & ASTROPHYSICS, 2002, 388 (03) : 868 - 888
  • [43] Precession of isolated neutron stars - II. Magnetic fields and type II superconductivity
    Wasserman, I
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2003, 341 (03) : 1020 - 1040
  • [44] Evidence for ordered magnetic fields in the quasar environment
    Udomprasert, PS
    Taylor, GB
    Pearson, TJ
    Roberts, DH
    ASTROPHYSICAL JOURNAL, 1997, 483 (01): : L9 - &
  • [45] Intergalactic magnetic fields from quasar outflows
    Furlanetto, SR
    Loeb, A
    ASTROPHYSICAL JOURNAL, 2001, 556 (02): : 619 - 634
  • [46] INTERPRETATION OF MISCIBLE DISPLACEMENTS IN LABORATORY CORES.
    Bretz, Robert E.
    Orr Jr., Franklin M.
    SPE Reservoir Engineering (Society of Petroleum Engineers), 1987, 2 (04): : 492 - 500
  • [47] The method of sampling swede bulbs by cores.
    Davey, VM
    JOURNAL OF AGRICULTURAL SCIENCE, 1932, 22 : 767 - 782
  • [48] DETECTING HOT SPOTS IN STATOR CORES.
    Anempodistov, V.P.
    Belyanin, V.K.
    Degusarov, Yu.A.
    Pinskii, G.B.
    Skoryatin, V.L.
    Soviet electrical engineering, 1982, 53 (10): : 127 - 129
  • [49] Intergalactic magnetic fields from quasar outflows
    Furlanetto, SR
    Loeb, A
    LIGHTHOUSES OF THE UNIVERSE: THE MOST LUMINOUS CELESTIAL OBJECTS AND THEIR USE FOR COSMOLOGY, 2002, : 450 - 452
  • [50] ANALYSIS OF THE MAGNETIC FIELD OF A LOOP IN AN ELECTRICAL MACHINE HAVING BILATERALLY TOOTHED CORES.
    Ivanov-Smolenskii, A.V.
    Power Engineering (New York) (English Translation of Izvestiya Akademii Nauk SSSR, Energetika i Transport), 1976, 14 (04): : 32 - 44