Archive/Pulsed-Neutron Experiments at the Inherently Safe Subcritical Assembly
Pulsed-Neutron Experiments at the Inherently Safe Subcritical Assembly
Alessandro Ingegno, William Zywiec, Daniel Siefman
20. Juli 2026
en

Abstract

The pulsed neutron technique is a powerful, dynamic method to assay the reactivity of a multiplying system. This work presents the novel application of the pulsed neutron technique to the Inherently Safe Subcritical Assembly, an experimental configuration accepted by the International Criticality Safety Benchmark Evaluation Project Handbook. The experiments were replicated with COG11.3, a continuous-energy Monte Carlo code. The pulsed neutron data were analyzed using the Sjöstrand and Gozani area-ratio methods and by extracting the prompt neutron decay constant. Subsequent static k-eigenvalue and α-eigenvalue simulations were also performed for the same configurations. Neutron detector dead-time effects from the experiments were corrected using the Backwards Extrapolation Method and shown to have a negligible impact on the estimated reactivities. The results highlight that capturing time-dependent effects like delayed neutron precursor buildup are essential to accurately reproduce experimental results. They also highlight the importance of shielding the detectors from generator source neutrons in deeply subcritical configurations.

IPC Classification

G06B60H01

Keywords

pulsed-neutronexperimentsinherentlysafesubcriticalassemblyjournalnuclearengineeringpulsedneutrontechniquepowerfuldynamicassayreactivitymultiplyingsystemworkpresentsnovelapplicationexperimentalconfiguration
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