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Neutrino detection rates from lepto-hadronic model simulations of bright blazar flares
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abstract
There is mounting evidence that blazars are the sources of part of the very-high-energy astrophysical neutrino flux detected by IceCube. In particular, there have been several spatial and temporal coincidences of individual IceCube neutrino events with flaring blazars, the most prominent of them being IceCube-170922A, coincident with a multi-wavelength flare of TXS~0506+056. Motivated by this, we used the time-dependent lepto-hadronic code OneHaLe to model the spectral energy distributions and light curves of a sample of bright $\gamma$-ray flares of blazars detected by Fermi-LAT, for which Kreter et al. (2020) provided calorimetric estimates of the expected neutrino detection rates. Flares were modelled with temporal changes of the proton injection spectra. Our analysis shows that the calorimetric approach overestimates the increase in neutrino production by a factor of typically $\sim 10$ if the $\gamma$-ray emission is dominated by proton-synchrotron radiation.
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Cited by 1 Pith paper
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Multi-wavelength analysis of FSRQ B2 1348+30B: Constraints on the jet power
A 14.5-year multiwavelength analysis of the blazar B2 1348+30B yields jet power limits of about 2.6e46 to 4.2e48 erg/s, with the heavy-jet estimate far exceeding Eddington luminosity.
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