No Correlation Between Disc Scale-Height and Jet Power in GRMHD Simulations
arXiv:1205.0257 · doi:10.1111/j.1365-2966.2012.21222.x
Abstract
It is now well established that changes in the X-ray spectral state of black hole low-mass X-ray binaries are correlated with changes in the radio properties of those systems. Assuming radio power is a proxy for jet power, we can say that the jet is continuously present in the hard state and undetectable (and therefore weaker) in the soft state. Since the different accretion states are also generally assumed to be associated with different disc geometries -- the hard state with a hot, thick flow, and the soft state with a cold, thin disc -- we investigate the possibility that these two phenomena are linked; i.e., that the difference in disc geometry is the cause of the difference in observed jet power. We do this by comparing various measures of jet power in numerical simulations of accretion discs of differing temperatures and thicknesses. We perform these simulations using the general relativistic magnetohydrodynamic code Cosmos++ and a newly added cooling function, which allows us to regulate the disc scale height H/r at different radii. We find no apparent correlation between the disc scale height and jet power whenever we normalize the latter by the mass accretion history of each simulation. We attribute this result to the role that the "corona" plays in confining and accelerating the jet (our corona may also be considered a failed MHD "wind"). The properties of the corona do not vary significantly from one simulation to another, even though the scale heights of the discs vary by up to a factor of four. If this holds true in nature, then it suggests that the correlation between spectral state and jet power must be attributable to some other property, possibly the topology of the magnetic field. Alternatively, it could be that the corona disappears altogether in the soft state, which would be consistent with observations, but has so far not been seen in simulations.
9 pages, 7 figures, accepted for publication in MNRAS
References in corpus (3)
- Stability of Relativistic Jets from Rotating, Accreting Black Holes via Fully Three-Dimensional Magnetohydrodynamic Simulations
- The Influence of Magnetic Field Geometry on the Evolution of Black Hole Accretion Flows: Similar Disks, Drastically Different Jets
- Magnetically Arrested Disks and Origin of Poynting Jets: Numerical Study
Cited by in corpus (18)
- Bardeen-Petterson Alignment, Jets and Magnetic Truncation in GRMHD Simulations of Tilted Thin Accretion Discs
- Complete Multiwavelength Evolution of Galactic Black Hole Transients During Outburst Decay I: Conditions for "Compact" Jet Formation
- Compact Binary Progenitors of Short Gamma-Ray Bursts
- On The Efficiency of Jet Production in Radio Galaxies
- Conservative GRMHD Simulations of Moderately Thin, Tilted Accretion Disks
- Ultra Long Gamma-Ray Bursts from the collapse of Blue Super Giant stars: an end-to-end simulation
- Ringed accretion disks: instabilities
- Ringed accretion disks: evolution of double toroidal configurations
- Characterising the Dynamo in a Radiatively Inefficient Accretion Flow
- Effect of geometrically thin discs on precessing, thick flows: Relevance to type-C QPOs
- The Dynamics of Truncated Black Hole Accretion Disks II: Magnetohydrodynamic Case
- Retrograde versus prograde models of accreting black holes
- Reconciling AGN-star formation, the Soltan argument, and Meier's paradox
- Energy Extraction from a Black Hole by a Strongly Magnetized Thin Accretion Disk
- Ultra-High-Energy Cosmic Rays from Low-Luminosity Active Galactic Nuclei
- cuHARM : a new GPU accelerated GR-MHD code and its application to ADAF disks
- Black Hole Spin Evolution Affected by Magnetic Field Decay
- Viscous Evolution of Magnetized Clumps: a Source for X-ray Flares in Gamma-ray Bursts