Detection of Anomalous Reactor Activity Using Antineutrino Count Rate Evolution Over the Course of a Reactor Cycle
arXiv:1009.2123 · doi:10.1063/1.3594247
Abstract
This paper analyzes the sensitivity of antineutrino count rate measurements to changes in the fissile content of civil power reactors. Such measurements may be useful in IAEA reactor safeguards applications. We introduce a hypothesis testing procedure to identify statistically significant differences between the antineutrino count rate evolution of a standard 'baseline' fuel cycle and that of an anomalous cycle, in which plutonium is removed and replaced with an equivalent fissile worth of uranium. The test would allow an inspector to detect anomalous reactor activity, or to positively confirm that the reactor is operating in a manner consistent with its declared fuel inventory and power level. We show that with a reasonable choice of detector parameters, the test can detect replacement of 73 kg of plutonium in 90 days with 95% probability, while controlling the false positive rate at 5%. We show that some improvement on this level of sensitivity may be expected by various means, including use of the method in conjunction with existing reactor safeguards methods. We also identify a necessary and sufficient daily antineutrino count rate to achieve the quoted sensitivity, and list examples of detectors in which such rates have been attained.
9 pages, 7 figures, submitted to J. Appl. Phys
References in corpus (10)
- Search for neutrino oscillations on a long base-line at the CHOOZ nuclear power station
- Final results from the Palo Verde Neutrino Oscillation Experiment
- Reactor-based Neutrino Oscillation Experiments
- Experimental Results from an Antineutrino Detector for Cooperative Monitoring of Nuclear Reactors
- Precision spectroscopy with reactor anti-neutrinos
- Nuclear Reactor Safeguards and Monitoring with Antineutrino Detectors
- Monitoring the Thermal Power of Nuclear Reactors with a Prototype Cubic Meter Antineutrino Detector
- Observation of the Isotopic Evolution of Pressurized Water Reactor Fuel Using an Antineutrino Detector
- Double Chooz, A Search for the Neutrino Mixing Angle theta-13
- Antineutrino Background from Spent Fuel Storage in sensitive Searches for theta_13 at Reactors