Flares and their echoes can help distinguish photon rings from black holes with space-Earth very long baseline interferometry
arXiv:2203.00577 · doi:10.1103/PhysRevD.105.063015
Abstract
Photon rings near the edge of a black hole shadow is supposed to be a unique tool to validate general relativity and provide reliable measurements of principal black hole parameters: spin and mass. Such measurements are possible though only for nearby supermassive black holes (SMBH) with Space-Earth Very Long Baseline Interferometry (S-VLBI) in the submillimeter wavelength range. For subrings to be distinguished S-EVLBI observations with long baselines at the Lagrangian Sun-Earth L2 libration point are needed. However, the average fluxes of nearby SMBH: Sagittarius A (Sgr A) and M87 -- Jy, are still insufficient to detect the signal from the photon rings with even such long baselines. We argue that only manifestations of flares in the submillimeter waveband in their accretion disks can reveal observable signals from the photon rings with the S-EVLBI at L2. Such observations will become possible within the planned join program of the {\it Event Horizon Telescope} (EHT) and {\it Millimetron Space Observatory} (MSO), and within the planned {\it next generation EHT} (ngEHT) project. Two different observational tests for photons rings are discussed. The first one involves observations of a time series of responds from subsequent subrings as can be seen in a 1D visibility function within the join EHT-MSO configuration, the second one -- measurements of an increase of the angle between subsequent subrings in the 2D VLBI image which can be obtained within the ngEHT project.
Accepted to publish in Physical Review D
References in corpus (19)
- First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole
- First M87 Event Horizon Telescope Results. VI. The Shadow and Mass of the Central Black Hole
- First M87 Event Horizon Telescope Results. IV. Imaging the Central Supermassive Black Hole
- First M87 Event Horizon Telescope Results. V. Physical Origin of the Asymmetric Ring
- First M87 Event Horizon Telescope Results. II. Array and Instrumentation
- First M87 Event Horizon Telescope Results. III. Data Processing and Calibration
- Event-horizon-scale structure in the supermassive black hole candidate at the Galactic Centre
- Black Hole Shadows, Photon Rings, and Lensing Rings
- Lensing by Kerr Black Holes
- Variable accretion and emission from the stellar winds in the Galactic centre
- Ab Initio Horizon-Scale Simulations of Magnetically Arrested Accretion in Sagittarius A* Fed by Stellar Winds
- Sgr A* near-infrared flares from reconnection events in a magnetically arrested disc
- Simultaneous Chandra, CSO and VLA Observations of Sgr A*: The Nature of Flaring Activity
- The Surprisingly Small Impact of Magnetic Fields On The Inner Accretion Flow of Sagittarius A* Fueled By Stellar Winds
- Simultaneous NIR/sub-mm observation of flare emission from SgrA*
- Stellar winds pump the heart of the Milky Way
- The role of feedback in accretion on Low Luminosity AGN: Sgr A* case study
- Second Scale Submillimeter Variability of Sagittarius A* during flaring activity of 2019: On the Origin of Bright Near Infrared Flares
- The Power of Simultaneous Multi-frequency Observations for mm-VLBI: Beyond Frequency Phase Transfer