arXiv · 2111.04510
Cerium ruthenium low-energy antineutrino measurements for safeguarding military naval reactors
Abstract
The recent agreement to transfer nuclear submarine reactors and technology from two nuclear-weapon states to a non-nuclear-weapon state (AUKUS deal) highlights an unsolved problem in international safeguards: how to safeguard naval reactor fuel while it is on-board an operational nuclear submarine. Proposals to extend existing safeguards technologies and practices are complicated by the need for civilian international inspectors to gain access to the interior of the submarine and the reactor compartment, which raises national security concerns. In this paper we show that implementing safeguards on submarine propulsion reactors using a low-energy antineutrino reactor-off method, between submarine patrols, can by-pass the need for on-board access all together. We find that, using inverse beta decay (IBD), detectors can achieve a timely and high level of assurance that a submarine's nuclear core has not been diverted (mass of around 100 kg) nor its enrichment level changed (mass of around 10 tons).
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Bernadette K. Cogswell, Patrick Huber. 2021-11-05. Cerium ruthenium low-energy antineutrino measurements for safeguarding military naval reactors. https://doi.org/10.1103/physrevlett.128.241803
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