Objects orbiting in the presence of a rotating massive body experience a gravitomagnetic frame-dragging effect, known as the Lense-Thirring effect, that has been experimentally confirmed in the weak-field limit. In the strong-field limit, near the horizon of a rotating black hole, frame dragging becomes so extreme that all objects must co-rotate with the black hole's angular momentum. In this work, we perform general relativistic numerical simulations to identify observable signatures of frame dragging in the strong-field limit that appear when infalling gas is forced to flip its direction of rotation as it is being accreted. In total intensity images, infalling streams exhibit "S"-shaped features due to the switch in the tangential velocit...
The horizon-scale images of black holes obtained with the Event Horizon Telescope have provided new ...
Black holes are a natural prediction of the theory of General Relativity. Their gravitational field...
We study gravitational lensing in strong-field limit by a static spherically symmetric black hole in...
Contains fulltext : 239395.pdf (Publisher’s version ) (Open Access
The Event Horizon Telescope (EHT) has produced images of two supermassive black holes, Messier~87* (...
Black hole accretion is one of nature's most efficient energy extraction processes. When gas falls i...
The Event Horizon Telescope (EHT) has mapped the central compact radio source of the elliptical gala...
The Event Horizon Telescope (EHT) Collaboration has successfully produced images of two supermassive...
We study the observational signatures of magnetically arrested black hole accretion with non-rotatin...
We study the strong gravitational lensing effect around rotating black holes in different gravity th...
We introduce a new library of 535,194 model images of the supermassive black holes and Event Horizon...
Magnetic null points can develop near the ergosphere boundary of a rotating black hole by the combin...
In 1977, Blandford and Znajek showed that the electromagnetic field surrounding a rotating black hol...
We present general relativistic magneto-hydrodynamical simulations of equal-mass spinning black hole...
It is now a century since Einstein tore down the edifice of classical physics, ultimately replacing ...
The horizon-scale images of black holes obtained with the Event Horizon Telescope have provided new ...
Black holes are a natural prediction of the theory of General Relativity. Their gravitational field...
We study gravitational lensing in strong-field limit by a static spherically symmetric black hole in...
Contains fulltext : 239395.pdf (Publisher’s version ) (Open Access
The Event Horizon Telescope (EHT) has produced images of two supermassive black holes, Messier~87* (...
Black hole accretion is one of nature's most efficient energy extraction processes. When gas falls i...
The Event Horizon Telescope (EHT) has mapped the central compact radio source of the elliptical gala...
The Event Horizon Telescope (EHT) Collaboration has successfully produced images of two supermassive...
We study the observational signatures of magnetically arrested black hole accretion with non-rotatin...
We study the strong gravitational lensing effect around rotating black holes in different gravity th...
We introduce a new library of 535,194 model images of the supermassive black holes and Event Horizon...
Magnetic null points can develop near the ergosphere boundary of a rotating black hole by the combin...
In 1977, Blandford and Znajek showed that the electromagnetic field surrounding a rotating black hol...
We present general relativistic magneto-hydrodynamical simulations of equal-mass spinning black hole...
It is now a century since Einstein tore down the edifice of classical physics, ultimately replacing ...
The horizon-scale images of black holes obtained with the Event Horizon Telescope have provided new ...
Black holes are a natural prediction of the theory of General Relativity. Their gravitational field...
We study gravitational lensing in strong-field limit by a static spherically symmetric black hole in...