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- W4385539366 abstract "Monitoring the internal pressure of nuclear spent fuel canisters in high-temperature and radioactive environments requires a nondestructive approach. Surface Acoustic Wave (SAW) sensors are well-suited for use in such harsh conditions. This study presents a nondestructive method for monitoring pressure inside a cylindrical canister using SAW resonators. A prototype of the canister was created for laboratory-level experiments, with a SAW resonator mounted on its outside surface. The pressure inside the canister causes hoop strain on the outer surface of the cylinder, which in turn strains the attached SAW substrate and alters its resonance frequency. Finite element simulations were used to estimate the hoop strain on the prototype's outer surface. The SAW sensor was calibrated by comparing the resonance frequency shift to various internal pressures. Initially, a strain gauge was used to calibrate the sensor on a cantilever, and then the procedure was experimentally validated on a pressurized canister prototype at room temperature. The SAW sensor attached to the cylinder achieved a sensitivity of − 56.82 Hz/kPa. The experiment was continued at higher temperatures (up to 60 °C) to explore the sensor's temperature dependency, and a temperature compensation method was utilized to ensure reliable pressure readings at elevated temperatures. The presented method in this paper enables the detection of temperature changes, both cooling and heating, and it can be utilized for real-time temperature compensation." @default.
- W4385539366 created "2023-08-04" @default.
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- W4385539366 date "2023-10-01" @default.
- W4385539366 modified "2023-10-04" @default.
- W4385539366 title "Temperature-compensated surface acoustic wave internal pressure sensor for nondestructive structural inspection of spent fuel canisters" @default.
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- W4385539366 doi "https://doi.org/10.1016/j.sna.2023.114552" @default.
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