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Feasibility study of β-ray detection system for small leakage from reactor coolant system

  • Received : 2020.09.29
  • Accepted : 2022.01.24
  • Published : 2022.07.25

Abstract

Because existing reactant coolant system (RCS) leakage detection mechanisms are insensitive to small leaks, a real-time, direct detection system with a detection threshold below 0.5 gpm·hr-1 was studied. A beta-ray detection system using a silicon detector with good energy resolution for beta rays and a low gamma-ray response was proposed. The detection performance in the leakage condition was evaluated through experiments and simulations. The concentration of 16N in the coolant corresponding to a coolant leakage of 0.5 gpm was calculated using the analytic method and ORIGEN-ARP. Based on the concentration of 16N and the measurement of the silicon detector with 90Sr/90Y, the beta-ray count rate was estimated using MCNPX. To evaluate the effect of gamma rays inside the containment building, the signal-to-noise ratio (SNR) was calculated. To evaluate the count rate ratio, the radiation field inside the containment building was simulated using MCNPX, and response evaluation experiments were performed using beta and gamma rays on the silicon detector. The expected beta-ray count rate at 0.5 gpm leakage was 7.26 × 105 counts/sec, and the signal-to-background count rate ratio exceeded 88 for a transport time of 10 s, demonstrating its suitability for operation inside a reactor containment building.

Keywords

Acknowledgement

This work was supported by the Korea Institute of Energy Technology Evaluation and Planning (KETEP) grant funded by the Korean government (MOTIE) (20181510102340, Development of a real-time detection system for unidentified RCS leakage less than 0.5 gpm).

References

  1. U.S., Nuclear Regulatory Commission, Regulatory Guide 1.45 Guidance on Monitoring and Responding to Reactor Coolant System Leakage, May 2008.
  2. C. King, In Materials Reliability Program: Survey of On-Line PWR Primary Coolant Leak Detection Technologies (MRP-187), EPRI, 2005.
  3. Operational Performance Information System for Nuclear Power Plant, http://opis.kins.re.kr, KINS.
  4. Korea Hydro, Nuclear power Co Ltd, ShinKori Nuclear Unit 3,4 Final Safety Analysis Report, 2015.
  5. J. Jang, T. Schaarschmidt, Y.K. Kim, Feasibility study of beta detector for small leak detection inside the reactor containment, J. Radiat. Prot. Res. 43 (2018) 154-159. https://doi.org/10.14407/jrpr.2018.43.4.154
  6. ORTEC Radiation Detectors, https://www.ortec-online.com/products/radiation-detectors.
  7. R.H. Pehl, F.S. Goulding, D.A. Landis, M. Lenzlinger, Accurate determination of the ionization energy in semiconductor detectors, Nucl. Instrum. Methods 59 (1968), 55-45.
  8. C. Canali, M. Martini, G. Ottaviani, A. Alberigi Quaranta, Measurements of the average energy per electron-hole pair generation in silicon between 5-320 K, IEEE Trans. Nucl. Sci. NS- 19 (4) (1972) 9-19.
  9. R.D. Ryan, Precision measurements of the ionization energy and its temperature variation in high purity silicon radiation detectors, IEEE Trans. Nucl. Sci. NS- 20 (1) (1973) 473-480. https://doi.org/10.1109/TNS.1973.4326950
  10. Instrument Society of America, Standard for light water reactor coolant pressure boundary leak detection, ISA-67.3-1982..
  11. I.C. Gauld, et al., ORIGEN-ARP: Automatic Rapid Processing for Spent Fuel Depletion, Decay, and Source Term Analysis, NUREG/CR-0200, 2004. ORNL/NUREG/CSD-2/V1/R7.
  12. D.B. Pelowitz (Ed.), MCNPX User's Manual Version 2.7.0, LA-CP-11-00438, Los Alamos National Laboratory, 2011.
  13. M.J. Berger et al., ESTAR, PSTAR, and ASTAR: Computer Programs for Calculating Stopping-Power and Range Tables for Electrons, Protons, and Helium Ions, http://physics.nist.gov/Star.
  14. Wu-Hung Peng, Particulate activity accumulated on A moving filter and RCS leak detection, Health Phys. 103 (2 Suppl 2) (2012) 174-178. https://doi.org/10.1097/HP.0b013e31825b5ae4
  15. U.S. Nuclear Regulatory Commission, Information Notice 2005-24: Non-conservatism in Leakage Detection Sensitivity, Washington, DC, August 3, 2005.