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Determining Reactor Fuel Type from Continuous Antineutrino Monitoring

Patrick Jaffke* and Patrick Huber

  • Center for Neutrino Physics, Virginia Tech, Blacksburg 24061, Virginia, USA

  • *Corresponding author. pjaffke@vt.edu

Phys. Rev. Applied 8, 034005 – Published 8 September, 2017

DOI: https://doi.org/10.1103/PhysRevApplied.8.034005

Abstract

We investigate the ability of an antineutrino detector to determine the fuel type of a reactor. A hypothetical 5-ton antineutrino detector is placed 25 m from the core and measures the spectral shape and rate of antineutrinos emitted by fission fragments in the core for a number of 90-d periods. Our results indicate that four major fuel types can be differentiated from the variation of fission fractions over the irradiation time with a true positive probability of detection at approximately 95%. In addition, we demonstrate that antineutrinos can identify the burnup at which weapons-grade mixed-oxide (MOX) fuel would be reduced to reactor-grade MOX, on average, providing assurance that plutonium-disposition goals are met. We also investigate removal scenarios where plutonium is purposefully diverted from a mixture of MOX and low-enriched uranium fuel. Finally, we discuss how our analysis is impacted by a spectral distortion around 6 MeV observed in the antineutrino spectrum measured from commercial power reactors.

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