Electron Thermodynamics in GRMHD Simulations of Low-Luminosity Black Hole Accretion
暂无分享,去创建一个
[1] E. Quataert,et al. AN EXTENDED MAGNETOHYDRODYNAMICS MODEL FOR RELATIVISTIC WEAKLY COLLISIONAL PLASMAS , 2015, 1508.00878.
[2] C. Gammie,et al. bhlight: GENERAL RELATIVISTIC RADIATION MAGNETOHYDRODYNAMICS WITH MONTE CARLO TRANSPORT , 2015, 1505.05119.
[3] L. Sironi. ELECTRON HEATING BY THE ION CYCLOTRON INSTABILITY IN COLLISIONLESS ACCRETION FLOWS. II. ELECTRON HEATING EFFICIENCY AS A FUNCTION OF FLOW CONDITIONS , 2014, 1411.6014.
[4] Charles F. Gammie,et al. Observational appearance of inefficient accretion flows and jets in 3D GRMHD simulations: Application to Sagittarius A , 2014, 1408.4743.
[5] N. Loureiro,et al. Ion and electron heating during magnetic reconnection in weakly collisional plasmas , 2014, Journal of Plasma Physics.
[6] D. Stern,et al. NuSTAR DETECTION OF HIGH-ENERGY X-RAY EMISSION AND RAPID VARIABILITY FROM SAGITTARIUS A⋆ FLARES , 2014, 1403.0900.
[7] J. Kasper,et al. LIMITS ON ALPHA PARTICLE TEMPERATURE ANISOTROPY AND DIFFERENTIAL FLOW FROM KINETIC INSTABILITIES: SOLAR WIND OBSERVATIONS , 2013, 1309.4010.
[8] J. Dexter,et al. Self-consistent spectra from radiative GRMHD simulations of accretion on to Sgr A* , 2012, 1209.4599.
[9] General relativistic magnetohydrodynamic simulations of accretion on to Sgr A*: how important are radiative losses? , 2012 .
[10] E. Quataert,et al. LOCAL TWO-DIMENSIONAL PARTICLE-IN-CELL SIMULATIONS OF THE COLLISIONLESS MAGNETOROTATIONAL INSTABILITY , 2012 .
[11] R. Penna,et al. SAGITTARIUS A* ACCRETION FLOW AND BLACK HOLE PARAMETERS FROM GENERAL RELATIVISTIC DYNAMICAL AND POLARIZED RADIATIVE MODELING , 2010, 1007.4832.
[12] E. Quataert,et al. INCORPORATING KINETIC PHYSICS INTO A TWO-FLUID SOLAR-WIND MODEL WITH TEMPERATURE ANISOTROPY AND LOW-FREQUENCY ALFVÉN-WAVE TURBULENCE , 2011, 1110.3029.
[13] Harvard,et al. Efficient Generation of Jets from Magnetically Arrested Accretion on a Rapidly Spinning Black Hole , 2011, 1108.0412.
[14] Cesar S. Lopez-Monsalvo,et al. A consistent first-order model for relativistic heat flow , 2011, 1107.0165.
[15] G. Howes,et al. PREDICTION OF THE PROTON-TO-TOTAL TURBULENT HEATING IN THE SOLAR WIND , 2011, 1106.4328.
[16] G. Howes. A prescription for the turbulent heating of astrophysical plasmas , 2010, 1009.4212.
[17] A. Sevin,et al. GRAVITY: a four-telescope beam combiner instrument for the VLTI , 2010, Astronomical Telescopes + Instrumentation.
[18] J. M. Stone,et al. SUSTAINED MAGNETOROTATIONAL TURBULENCE IN LOCAL SIMULATIONS OF STRATIFIED DISKS WITH ZERO NET MAGNETIC FLUX , 2009, 0909.1570.
[19] GENERALIZED GENERAL RELATIVISTIC MAGNETOHYDRODYNAMIC EQUATIONS AND DISTINCTIVE PLASMA DYNAMICS AROUND ROTATING BLACK HOLES , 2009, 0912.4930.
[20] P. K. Leung,et al. RADIATIVE MODELS OF SGR A* FROM GRMHD SIMULATIONS , 2009, 0909.5431.
[21] W. Matthaeus,et al. EMPIRICAL CONSTRAINTS ON PROTON AND ELECTRON HEATING IN THE FAST SOLAR WIND , 2009, 0907.2650.
[22] LOCALITY OF MHD TURBULENCE IN ISOTHERMAL DISKS , 2009, 0901.0273.
[23] J. Stone,et al. DISSIPATION AND HEATING IN SUPERSONIC HYDRODYNAMIC AND MHD TURBULENCE , 2008, 0809.4005.
[24] A. Niell,et al. Event-horizon-scale structure in the supermassive black hole candidate at the Galactic Centre , 2008, Nature.
[25] C. Gammie,et al. Axisymmetric Shearing Box Models of Magnetized Disks , 2008 .
[26] Jonathan C. McKinney,et al. WHAM : a WENO-based general relativistic numerical scheme -I. Hydrodynamics , 2007, 0704.2608.
[27] G. Hammett,et al. Electron Heating in Hot Accretion Flows , 2007, astro-ph/0703572.
[28] E. Quataert,et al. The Effects of Thermal Conduction on Radiatively Inefficient Accretion Flows , 2006, astro-ph/0608467.
[29] J. McClintock,et al. X-Ray Properties of Black-Hole Binaries , 2006, astro-ph/0606352.
[30] C. Gammie,et al. Primitive Variable Solvers for Conservative General Relativistic Magnetohydrodynamics , 2005, astro-ph/0512420.
[31] D. Rouan,et al. Near-infrared flares from accreting gas around the supermassive black hole at the Galactic Centre , 2003, Nature.
[32] S. Gary,et al. Resonant electron firehose instability: Particle-in-cell simulations , 2003 .
[33] Ramesh Narayan,et al. Nonthermal Electrons in Radiatively Inefficient Accretion Flow Models of Sagittarius A* , 2003, astro-ph/0304125.
[34] W. Goss,et al. Variability of Sagittarius A*: Flares at 1 Millimeter , 2003, astro-ph/0302062.
[35] Charles F. Gammie,et al. HARM: A NUMERICAL SCHEME FOR GENERAL RELATIVISTIC MAGNETOHYDRODYNAMICS , 2003 .
[36] J. Hawley,et al. A Numerical Method for General Relativistic Magnetohydrodynamics , 2002, astro-ph/0210518.
[37] S. Komissarov,et al. A Godunov-type scheme for relativistic magnetohydrodynamics , 1999 .
[38] E. Quataert,et al. Turbulence and Particle Heating in Advection-dominated Accretion Flows , 1998, astro-ph/9803112.
[39] J. Carlstrom,et al. High-Frequency Measurements of the Spectrum of Sagittarius A* , 1997 .
[40] E. Quataert. Particle Heating by Alfvénic Turbulence in Hot Accretion Flows , 1997, astro-ph/9710127.
[41] Jonathan E. Grindlay,et al. Advection-dominated Accretion Model of Sagittarius A*: Evidence for a Black Hole at the Galactic Center , 1997, astro-ph/9706112.
[42] E. Quataert,et al. Are Particles in Advection-dominated Accretion Flows Thermal? , 1997, astro-ph/9705067.
[43] Cambridge,et al. The 'Quiescent' black hole in M87 , 1996, astro-ph/9610097.
[44] Joseph Wang,et al. Whistler instability: Electron anisotropy upper bound , 1996 .
[45] R. Narayan,et al. Advection-dominated Accretion: Self-Similarity and Bipolar Outflows , 1994, astro-ph/9411058.
[46] J. Hawley,et al. A powerful local shear instability in weakly magnetized disks. I - Linear analysis. II - Nonlinear evolution , 1990 .
[47] W. F. Noh. Errors for calculations of strong shocks using an artificial viscosity and artificial heat flux , 1985 .
[48] Hiscock,et al. Generic instabilities in first-order dissipative relativistic fluid theories. , 1985, Physical review. D, Particles and fields.
[49] John F. Hawley,et al. A Numerical Study of Nonspherical Black Hole Accretion , 1984 .
[50] N. T. Gladd. The whistler instability at relativistic energies , 1983 .
[51] E. Phinney,et al. Ion-supported tori and the origin of radio jets , 1982, Nature.
[52] T. Geballe,et al. The central parsec of the Galaxy , 1979 .
[53] Werner Israel,et al. Transient relativistic thermodynamics and kinetic theory , 1979 .
[54] S. Ichimaru. Bimodal behavior of accretion disks: Theory and application to Cygnus X-1 transitions , 1977 .
[55] V. Moncrief,et al. Relativistic fluid disks in orbit around Kerr black holes , 1976 .
[56] Douglas M. Eardley,et al. A two-temperature accretion disk model for Cygnus X-1: structure and spectrum. , 1976 .
[57] J. L. Anderson,et al. A relativistic relaxation-time model for the Boltzmann equation , 1974 .
[58] B. Dewitt,et al. Black holes (Les astres occlus) , 1973 .
[59] Carl Eckart,et al. The Thermodynamics of Irreversible Processes. III. Relativistic Theory of the Simple Fluid , 1940 .