Related Experiment Video
Updated: Aug 7, 2026

Automated 90Sr Separation and Preconcentration in a Lab-on-Valve System at Ppq Level
Published on: June 6, 2018
Investigation of Multi-parameter Synchronous Detection Technology for Radioactive Aerosols in Spent Fuel Dissolution
Yongzhen Xia1, Runjie Di, Yongji Xie
1China Nuclear Power Engineering Co., Ltd., Beijing 100840, China.
Abstract:
Spent-fuel dissolution produces multi-nuclide, high-activity aerosols. Gross α/β CAMs are prone to interference and slow response, limiting timely dose assessment and alarms. We developed an integrated multiparameter synchronous detection system to simultaneously measure activity concentration, spectra, and particle size. The instrument integrates sampling and optical sizing (0.1-10 μm) with a silicon barrier (α), thin-window proportional (β), and 2 × 2 NaI (Tl) (γ) detectors. Signals are digitized (14-bit/100 MS s-1) for pulse-shape discrimination and 8,192-channel spectrometry. Performance followed ISO 11929/Currie. Standard sources and mixed-nuclide aerosols were used for calibration, linearity, response, and misclassification tests; stability was assessed over 720 h (50 L min-1, 60 s integration). Detection efficiencies were 26.3% (241Am α), 42.5% (90Sr/90Y β), and 31.2% (137Cs γ). Minimum detectable activities were 8.5 × 10-7 Bq cm-3 (241Am), 9.2 × 10-7 Bq cm-3 (239Pu), and 3.1 × 10-6 Bq cm-1 (90Sr/90Y). Dynamic tests gave T90 = 17.5 s and T95 = 22.3 s; α/β misclassification <5%; linearity across five orders (R2 = 0.9987). Compared with a representative CAM, spectral resolving power improved ≈5-fold and response time shortened 10-20 times. Energy and efficiency drift over 720 h were ≤±2% and ≤±3%. Multi-parameter acquisition reduces dose-assessment bias from nuclide misidentification and size assumptions and shortens alarm latency to <30 s in high-background, multi-nuclide environments, supporting ALARA and process control during spent-fuel dissolution.
More Related Videos
07:52A Novel Technique for Raman Analysis of Highly Radioactive Samples Using Any Standard Micro-Raman Spectrometer
Published on: April 12, 2017
09:18Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
Published on: December 14, 2017
Related Concept Videos
Atomic Emission Spectroscopy: Instrumentation
Atomic Fluorescence Spectroscopy