Roche Accretion of stars close to massive black holes
暂无分享,去创建一个
[1] T. Grav,et al. An ultraviolet–optical flare from the tidal disruption of a helium-rich stellar core , 2012, Nature.
[2] Ryan Chornock,et al. Birth of a relativistic outflow in the unusual γ-ray transient Swift J164449.3+573451 , 2011, Nature.
[3] Nathaniel R. Butler,et al. A Possible Relativistic Jetted Outburst from a Massive Black Hole Fed by a Tidally Disrupted Star , 2011, Science.
[4] Andrew J. Drake,et al. OPTICAL DISCOVERY OF PROBABLE STELLAR TIDAL DISRUPTION FLARES , 2010, 1009.1627.
[5] R. Blandford,et al. Quasi-periodic flares from star-accretion-disc collisions , 2009, 0906.0800.
[6] Ramesh Narayan,et al. INFERRING THE INCLINATION OF A BLACK HOLE ACCRETION DISK FROM OBSERVATIONS OF ITS POLARIZED CONTINUUM RADIATION , 2008, 0809.0866.
[7] M. Gierliński,et al. A periodicity of ∼1 hour in X-ray emission from the active galaxy RE J1034+396 , 2008, Nature.
[8] Ramesh Narayan,et al. On the Nature of the Variable Infrared Emission from Sagittarius A* , 2004, astro-ph/0401429.
[9] C. Reynolds,et al. Fluorescent iron lines as a probe of astrophysical black hole systems , 2003 .
[10] P. Podsiadlowski,et al. Irradiation pressure effects in close binary systems , 2001, astro-ph/0109304.
[11] Andrew King,et al. Accretion Power in Astrophysics: Contents , 2002 .
[12] Pasadena,et al. Gravitational waves from a compact star in a circular, inspiral orbit, in the equatorial plane of a massive, spinning black hole, as observed by LISA , 2000, gr-qc/0007074.
[13] S. Hughes. Evolution of circular, nonequatorial orbits of Kerr black holes due to gravitational-wave emission. II. Inspiral trajectories and gravitational waveforms , 2000, gr-qc/0104041.
[14] D. Chakrabarty,et al. Neutron Star Mass Measurements. I. Radio Pulsars , 1998, astro-ph/9803260.
[15] C. Done,et al. Solving the mystery of the X-ray periodicity in the Seyfert galaxy NGC6814 , 1993, Nature.
[16] A. King,et al. Stellar accretion in active galactic nuclei , 1993 .
[17] J. Arons,et al. High-energy emission from the eclipsing millisecond pulsar PSR 1957+20 , 1993 .
[18] E. Phinney,et al. X-ray detection of the eclipsing millisecond pulsar PSR1957 +20 , 1992, Nature.
[19] C. J. Clarke,et al. Star–disc interactions near a massive black hole , 1991 .
[20] S. Kulkarni,et al. Discovery of a nebula around PSR1957 + 20 , 1988, Nature.
[21] Martin J. Rees,et al. Tidal disruption of stars by black holes of 106–108 solar masses in nearby galaxies , 1988, Nature.
[22] M. S. Hjellming,et al. Thresholds for rapid mass transfer in binary systems. I. Polytropic models , 1987 .
[23] R. Webbink. Stellar evolution and binaries , 1985 .
[24] R. Blandford,et al. Electromagnetic extraction of energy from Kerr black holes , 1977 .
[25] C. Cunningham. The effects of redshifts and focusing on the spectrum of an accretion disk around a Kerr black hole , 1975 .
[26] J. Hills. Possible power source of Seyfert galaxies and QSOs , 1975, Nature.
[27] K. Thorne. Disk-Accretion onto a Black Hole. II. Evolution of the Hole , 1974 .
[28] L. Fishbone. The relativistic Roche problem. I - Equilibrium theory for a body in equatorial, circular orbit around a Kerr black hole. , 1973 .
[29] William H. Press,et al. Rotating Black Holes: Locally Nonrotating Frames, Energy Extraction, and Scalar Synchrotron Radiation , 1972 .