Stochastic Theory of the Fission Chamber Current Generated by Non-Poissonian Neutrons
Journal article, 2016

The Campbell theorem, relating the variance of the current of a fission chamber (a "filtered Poisson process") to the intensity of the detection events and to the detector pulse shape, becomes invalid when the neutrons generating the fission chamber current are not independent. Recently, a formalism was developed by the present authors, by which the variance of the detector current can be calculated for detecting neutrons in a subcritical multiplying system, where the detection events are obviously not independent. In the present paper, the previous formalism, which only accounted for prompt neutrons, is generalized to account also for delayed neutrons. A rigorous probabilistic analysis of the detector current was performed by using the same simple, but realistic detector model as in the previous work. The results of the present analysis made it possible to determine the bias of the traditional Campbelling techniques both qualitatively and quantitatively. The results show that the variance still remains proportional to the detection intensity, and is thus suitable for the monitoring of the mean flux, but the calibration factor between the variance and the detection intensity is an involved function of the detector pulse shape and the subcritical reactivity of the system, which diverges for critical systems.

Fission chambers

correlated events

Campbell techniques

Author

L. Pal

Hungarian Academy of Sciences

Imre Pazsit

Chalmers, Physics, Subatomic and Plasma Physics

Nuclear Science and Engineering

0029-5639 (ISSN) 1943748x (eISSN)

Vol. 184 4 537-550

Subject Categories

Accelerator Physics and Instrumentation

DOI

10.13182/nse16-18

More information

Created

10/7/2017