How Black Holes Get Their Kicks: Gravitational Radiation Recoil Revisited
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[1] D. Holz,et al. Consequences of Gravitational Radiation Recoil , 2004, astro-ph/0402057.
[2] R. Price,et al. Radiation content of conformally flat initial data , 2004, gr-qc/0401045.
[3] K. Martel. Gravitational waveforms from a point particle orbiting a Schwarzschild black hole , 2003, gr-qc/0311017.
[4] M. Rees,et al. Early Reionization by Miniquasars , 2003, astro-ph/0310223.
[5] G. Khanna. Teukolsky evolution of particle orbits around Kerr black holes in the time domain: Elliptic and inclined orbits , 2003, gr-qc/0309107.
[6] E. Colbert,et al. Intermediate - mass black holes , 2003, astro-ph/0308402.
[7] Piero Madau,et al. The Assembly and Merging History of Supermassive Black Holes in Hierarchical Models of Galaxy Formation , 2002, astro-ph/0207276.
[8] T. Damour. Coalescence of two spinning black holes: an effective one-body approach , 2001, gr-qc/0103018.
[9] A. Loeb,et al. In the Beginning: The First Sources of Light and the Reionization of the Universe , 2000, astro-ph/0010468.
[10] J. Cordes,et al. Pulsar Jets: Implications for Neutron Star Kicks and Initial Spins , 2000, astro-ph/0007272.
[11] 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.
[12] A. Ori,et al. Transition from inspiral to plunge for a compact body in a circular equatorial orbit around a massive, spinning black hole , 2000, gr-qc/0003032.
[13] P. Anninos,et al. Radiation recoil from highly distorted black holes , 1999, astro-ph/9907075.
[14] R. Price,et al. Head-on collisions of unequal mass black holes: Close-limit predictions , 1996, gr-qc/9611022.
[15] Kidder,et al. Coalescing binary systems of compact objects to (post)5/2-Newtonian order. V. Spin effects. , 1995, Physical review. D, Particles and fields.
[16] Seidel,et al. Head-on collision of two equal mass black holes. , 1994, Physical review. D, Particles and fields.
[17] Wiseman,et al. Coalescing binary systems of compact objects to (post)5/2-Newtonian order. II. Higher-order wave forms and radiation recoil. , 1992, Physical review. D, Particles and fields.
[18] Ken-ichi Oohara,et al. General Relativistic Collapse to Black Holes and Gravitational Waves from Black Holes , 1987 .
[19] M. Fitchett,et al. Linear momentum and gravitational waves: circular orbits around a Schwarzschild black hole , 1984 .
[20] M. Fitchett. The influence of gravitational wave momentum losses on the centre of mass motion of a Newtonian binary system , 1983 .
[21] M. Haugan,et al. Gravitational radiation from particles falling along the symmetry axis into a Kerr black hole: the momentum radiated , 1983 .
[22] K. Thorne. Multipole expansions of gravitational radiation , 1980 .
[23] E. Harrison,et al. Acceleration of pulsars by asymmetric radiation , 1975 .
[24] Saul A. Teukolsky,et al. Perturbations of a rotating black hole. I. Fundamental equations for gravitational, electromagnetic, and neutrino-field perturbations , 1973 .
[25] J. Bekenstein. Gravitational-Radiation Recoil and Runaway Black Holes , 1973 .
[26] William H. Press,et al. Rotating Black Holes: Locally Nonrotating Frames, Energy Extraction, and Scalar Synchrotron Radiation , 1972 .
[27] A. Peres. Classical Radiation Recoil , 1962 .
[28] M. Rotenberg,et al. Transport of momentum by gravitational waves: the linear approximation , 1961, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.