Institute of Applied Synthetic Chemistry & TRIGA Center Atominstitut, TU Wien, 1060 Vienna, Austria.
Institute of Inorganic Chemistry, Leibniz Universität Hannover, 30167 Hannover, Germany.
Environ Sci Technol. 2023 Dec 5;57(48):20024-20033. doi: 10.1021/acs.est.3c05783. Epub 2023 Nov 15.
Tritiated water (HTO), a ubiquitous byproduct of the nuclear industry, is a radioactive contaminant of major concern for environmental authorities. Although understanding spatiotemporal heterogeneity of airborne HTO vapor holds great importance for radiological safety as well as diagnosing a reactor's status, comprehensive HTO distribution dynamics inside nuclear facilities has not been studied routinely yet due to a lack of appropriate monitoring techniques. For current systems, it is difficult to simultaneously achieve high representativeness, sensitivity, and spatial resolution. Here, we developed a passive monitoring scheme, including a newly designed passive sampler and a tailored analytical protocol for the first comprehensive 3D distribution characterization of HTO inside a nuclear reactor facility. The technique enables linear sampling in any environment at a one-day resolution and simultaneous preparation of hundreds of samples within 1 day. Validation experiments confirmed the method's good metrological properties and sensitivity to the HTO's spatial dynamics. The air in TU Wien's reactor hall exhibits a range of H concentrations from 75-946 mBq m in the entire 3D matrix. The HTO release rate estimated by the mass-balance model (3199 ± 306 Bq h) matches the theoretical calculation (2947 ± 254 Bq h), suggesting evaporation as the dominant HTO source in the hall. The proposed method provides reliable and quality-controlled 3D monitoring at low cost, which can be adopted not only for HTO and may also inspire monitoring schemes of other indoor pollutants.
氚水(HTO)是核工业的一种普遍副产品,是环境当局主要关注的放射性污染物。尽管了解空气中 HTO 蒸汽的时空异质性对于放射性安全以及诊断反应堆的状态具有重要意义,但由于缺乏适当的监测技术,核设施内的综合 HTO 分布动态尚未得到常规研究。对于当前的系统,很难同时实现高代表性、灵敏度和空间分辨率。在这里,我们开发了一种被动监测方案,包括一个新设计的被动采样器和一个专门的分析协议,用于首次全面表征核反应堆设施内的 HTO 的 3D 分布。该技术可在任何环境中以一天的分辨率进行线性采样,并在一天内同时准备数百个样品。验证实验证实了该方法具有良好的计量特性和对 HTO 空间动态的灵敏度。TU Wien 反应堆大厅内的空气在整个 3D 矩阵中具有 75-946 mBq m 的 HTO 浓度范围。通过质量平衡模型估计的 HTO 释放率(3199 ± 306 Bq h)与理论计算值(2947 ± 254 Bq h)相匹配,这表明蒸发是大厅内 HTO 的主要来源。该方法提供了可靠且质量受控的低成本 3D 监测,可以不仅用于 HTO,还可以启发其他室内污染物的监测方案。