Performance Assessment of Distributed Strain Sensing Techniques for Convergence Monitoring of Radioactive Waste Repository

Sensors (Basel). 2022 Dec 30;23(1):398. doi: 10.3390/s23010398.

Abstract

This paper presents the measurement methodology of diameter reduction monitoring of micro-tunnel structures used for radioactive waste storage based on distributed strain measurements along fiber optic sensors installed on the circumference. The whole measurement procedure is described: the calibration of the sensors for use in harsh environment (temperature and radioactivity), the measurement analysis technique, the performance assessment of different measurement systems on a surface mock-up and the in-situ validation on an underground structure. The performances of Brillouin and Rayleigh backscattering measurements are compared, as well as different fixation technologies. Distributed measurements are compared to alternative measurements: displacement sensors, Bragg grating extensometers and MEMS accelerometers. The distributed Rayleigh backscattering measurement performed on optical cables bonded to the surface of the structure appears to be the best solution for monitoring the convergence of micro-tunnels and offers comparable performance to alternative technologies tested on the surface demonstrator.

Keywords: Brillouin scattering; Rayleigh scattering; Structural Health Monitoring; convergence monitoring; distributed optical fiber; shape monitoring; strain sensing cable.

MeSH terms

  • Calibration
  • Fiber Optic Technology / methods
  • Optical Fibers*
  • Radioactive Waste*
  • Transducers

Substances

  • Radioactive Waste