Radio Synchrotron Emission from a Bow Shock around the Gas Cloud G2 Heading toward the Galactic Center
arXiv:1207.4215 · doi:10.1088/2041-8205/757/2/L20
Abstract
A dense ionized cloud of gas has been recently discovered to be moving directly toward the supermassive black hole, Sgr A*, at the Galactic Center. In June 2013, at the pericenter of its highly eccentric orbit, the cloud will be approximately 3100 Schwarzschild radii from the black hole and will move supersonically through the ambient hot gas with a velocity of v_p ~ 5400 km/s. A bow shock is likely to form in front of the cloud and could accelerate electrons to relativistic energies. We estimate via particle-in-cell simulations the energy distribution of the accelerated electrons and show that the non-thermal synchrotron emission from these electrons might exceed the quiescent radio emission from Sgr A* by a factor of several. The enhanced radio emission should be detectable at GHz and higher frequencies around the time of pericentric passage and in the following months. The bow shock emission is expected to be displaced from the quiescent radio emission of Sgr A* by ~33 mas. Interferometric observations could resolve potential changes in the radio image of Sgr A* at wavelengths < 6 cm.
accepted for publication in ApJ Letters, includes a new figure
References in corpus (1)
Cited by in corpus (36)
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- Nature of the Galactic centre NIR-excess sources. I. What can we learn from the continuum observations of the DSO/G2 source?
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- A Stellar Wind Origin for the G2 Cloud: Three-Dimensional Numerical Simulations
- Radio Synchrotron Emission from the Bow Shock of G2
- Effect of an isotropic outflow from the Galactic centre on the bow-shock evolution along the orbit
- Using gas clouds to probe the accretion flow around SgrA*: G2's delayed pericenter passage
- Constraining the accretion flow density profile near Sgr A* using the -band emission of the S2 star
- Multiple accretion events as a trigger for Sgr A* activity
- The S2 star as a probe of the accretion disk of Sgr A*
- Radio Continuum Emission from the Magnetar SGR J1745-2900: Interaction with Gas Orbiting Sgr A*
- No Microwave Flare of Sagittarius A* around the G2 Periastron Passing
- Monitoring the Galactic Centre with Australia Telescope Compact Array
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- Signatures of an Encounter Between the G2 Cloud and a Jet from Sgr A*
- Long-term monitoring of Sgr A* at 7 mm with VERA and KaVA
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