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Nuclear reactor power monitoring using silicon carbide semiconductor radiation detectors

  • Frank H. Ruddy
  • , Abdul R. Dulloo
  • , John G. Seidel
  • , Frederick W. Hantz
  • , Louis R. Grobmyer

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

Silicon carbide semiconductor neutron detectors are being developed for use as ex-vessel power monitors for pressurized water reactors. Key features such as neutron response, radiation resistance, and high-temperature operation have been explored for silicon carbide detectors, and the results are consistent with their use in the ex-vessel environment. Prototype silicon carbide ex-core neutron detectors have been assembled and tested under research reactor conditions simulating ex-core neutron monitoring requirements. Linear, pulse-mode operation without the need for gamma compensation has been demonstrated with these prototype detectors. The silicon carbide detectors are compared to presently deployed gas-filled ex-vessel detectors, and several advantages of the silicon carbide technology can be seen. It is anticipated that a wide-range silicon carbide neutron detector can be designed to replace the combined functions of the multiple power range detectors in use. Furthermore, the need for gamma-ray compensation will be eliminated, and more efficient reactor operation and simplified reactor operating procedures will result.
Original languageEnglish
Pages (from-to)198 – 208
JournalNuclear Technology
Volume140
Issue number2
Early online dateNov 2002
DOIs
StatePublished - Nov 2002
Externally publishedYes

Keywords

  • Neutron detectors
  • Radiation damage
  • Radiation protection
  • Schottky barrier diodes
  • Silicon carbide
  • Nuclear reactor power monitoring
  • Silicon carbide detectors
  • Pressurized water reactors

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