首页> 外文期刊>Journal of Environmental Radioactivity >Role of soil-to-leaf tritium transfer in controlling leaf tritium dynamics: Comparison of experimental garden and tritium-transfer model results
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Role of soil-to-leaf tritium transfer in controlling leaf tritium dynamics: Comparison of experimental garden and tritium-transfer model results

机译:土壤-叶tri转移在控制叶tri动力学中的作用:实验花园和tri转移模型结果的比较

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Environmental transfer models assume that organically-bound tritium (OBT) is formed directly from tissue-free water tritium (TFWT) in environmental compartments. Nevertheless, studies in the literature have shown that measured OBT/HTO ratios in environmental samples are variable and generally higher than expected. The importance of soil-to-leaf HTO transfer pathway in controlling the leaf tritium dynamics is not well understood. A model inter-comparison of two tritium transfer models (CTEM-CLASS-TT and SOLVEG-II) was carried out with measured environmental samples from an experimental garden plot set up next to a tritium-processing facility. The garden plot received one of three different irrigation treatments no external irrigation, irrigation with low tritium water and irrigation with high tritium water. The contrast between the results obtained with the different irrigation treatments provided in-sights into the impact of soil-to-leaf HTO transfer on the leaf tritium dynamics. Concentrations of TFWT and OBT in the garden plots that were not irrigated or irrigated with low tritium water were variable, responding to the arrival of the HTO-plume from the tritium-processing facility. In contrast, for the plants irrigated with high tritium water, the TFWT concentration remained elevated during the entire experimental period due to a continuous source of high HTO in the soil. Calculated concentrations of OBT in the leaves showed an initial increase followed by quasi-equilibration with the TFWT concentration. In this quasi-equilibrium state, concentrations of OBT remained elevated and unchanged despite the arrivals of the plume. These results from the model inter-comparison demonstrate that soil-to-leaf HTO transfer significantly affects tritium dynamics in leaves and thereby OBT/HTO ratio in the leaf regardless of the atmospheric HTO concentration, only if there is elevated HTO concentrations in the soil. The results of this work indicate that assessment models should be refined to consider the importance of soil-to-leaf HTO transfer to ensure that dose estimates are accurate and conservative. (C) 2017 Elsevier Ltd. All rights reserved.
机译:环境转移模型假定有机结合的tri(OBT)直接由环境隔室中的无组织water(TFWT)形成。但是,文献研究表明,环境样品中测得的OBT / HTO比是可变的,通常高于预期。土壤-叶HTO转移途径在控制叶tri动力学方面的重要性尚未得到很好的理解。对两个tri转移模型(CTEM-CLASS-TT和SOLVEG-II)进行了模型间比较,并从from处理设施旁设置的实验性花园中测量了环境样品。该花园小区接受了以下三种不同的灌溉处理之一:无外部灌溉,低tri水灌溉和高high水灌溉。通过不同灌溉方式获得的结果之间的对比,可以直观地了解土壤到叶子的HTO转移对叶片tri动态的影响。未灌溉或未用低tri水灌溉的花园样地中的TFWT和OBT的浓度是可变的,以响应HTO烟气从t处理设施的到来。相反,对于用高water水灌溉的植物,由于土壤中不断有高HTO的来源,TFWT的浓度在整个实验期间保持较高。叶片中OBT的计算浓度显示出初始增加,然后与TFWT浓度准平衡。在这种准平衡状态下,尽管羽流到来,但OBT的浓度保持升高且保持不变。来自模型间比较的这些结果表明,仅当土壤中的HTO浓度升高时,土壤中的HTO转移才会显着影响叶片中的dynamic动力学,从而影响叶片中的OBT / HTO比率,而与大气中的HTO浓度无关。这项工作的结果表明,应完善评估模型,以考虑从土壤到叶子的HTO转移的重要性,以确保剂量估计准确且保守。 (C)2017 Elsevier Ltd.保留所有权利。

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