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本文引用的文献

1
Internal exposure to uranium in a pooled cohort of gaseous diffusion plant workers.气态扩散厂工人合并队列中的铀内照射
Radiat Prot Dosimetry. 2016 Mar;168(4):471-7. doi: 10.1093/rpd/ncv357. Epub 2015 Jun 24.
2
Method for analyzing left-censored bioassay data in large cohort studies.大型队列研究中左删失生物测定数据的分析方法。
J Expo Sci Environ Epidemiol. 2017 Jan;27(1):1-6. doi: 10.1038/jes.2015.36. Epub 2015 May 13.
3
A biokinetic model for systemic technetium in adult humans.成人体内全身锝的生物动力学模型。
J Radiol Prot. 2015 Jun;35(2):297-315. doi: 10.1088/0952-4746/35/2/297. Epub 2015 Apr 10.
4
Age-dependent doses to members of the public from intake of radionuclides: Part 4. Inhalation dose coefficients. A report of a task group of Committee 2 of the International Commission on Radiological Protection.公众摄入放射性核素后的年龄相关剂量:第4部分。吸入剂量系数。国际放射防护委员会第2委员会任务组的报告
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5
Age-dependent doses to members of the public from intake of radionuclides: Part 2. Ingestion dose coefficients. A report of a Task Group of Committee 2 of the International Commission on Radiological Protection.公众摄入放射性核素的年龄相关剂量:第2部分。摄入剂量系数。国际放射防护委员会第2委员会任务组的报告
Ann ICRP. 1993;23(3-4):1-167.
6
Human respiratory tract model for radiological protection. A report of a Task Group of the International Commission on Radiological Protection.用于放射防护的人体呼吸道模型。国际放射防护委员会一个任务组的报告。
Ann ICRP. 1994;24(1-3):1-482.

气态扩散厂中回收铀污染物的暴露情况。

Exposure to Recycled Uranium Contaminants in Gaseous Diffusion Plants.

作者信息

Anderson Jeri L, Apostoaei A Iulian, Yiin James H, Tseng Chih-Yu

机构信息

Division of Surveillance, Hazard Evaluations and Field Studies (DSHEFS), National Institute for Occupational Safety and Health (NIOSH), Cincinnati, OH45226, USA.

Oak Ridge Center for Risk Analysis, Inc., Oak Ridge, TN37830, USA.

出版信息

Radiat Prot Dosimetry. 2017 Aug 1;175(4):503-507. doi: 10.1093/rpd/ncw379.

DOI:10.1093/rpd/ncw379
PMID:28096314
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5892198/
Abstract

As part of an ongoing study of health effects in a pooled cohort of gaseous diffusion plant workers, organ dose from internal exposure to uranium was evaluated. Due to the introduction of recycled uranium into the plants, there was also potential for exposure to radiologically significant levels of 99Tc, 237Np and 238,239Pu. In the evaluation of dose response, these radionuclide exposures could confound the effect of internal uranium. Using urine bioassay data for study subjects reported in facility records, intakes and absorbed dose to bone surface, red bone marrow and kidneys were estimated as these organs were associated with a priori outcomes of interest. Additionally, 99Tc intakes and doses were calculated using a new systemic model for technetium and compared to intakes and doses calculated using the current model recommended by the International Commission on Radiological Protection. Organ absorbed doses for the transuranics were significant compared to uranium doses; however, 99Tc doses calculated using the new systemic model were significant as well. Use of the new model resulted in an increase in 99Tc-related absorbed organ dose of a factor of 8 (red bone marrow) to 30 (bone surface).

摘要

作为对气态扩散厂工人合并队列健康影响的一项正在进行的研究的一部分,对内部暴露于铀的器官剂量进行了评估。由于向工厂引入了回收铀,工人也有可能暴露于放射性水平显著的99Tc、237Np和238,239Pu。在剂量反应评估中,这些放射性核素暴露可能会混淆内部铀的影响。利用设施记录中报告的研究对象的尿液生物测定数据,估算了骨表面、红骨髓和肾脏的摄入量和吸收剂量,因为这些器官与预先设定的感兴趣结果相关。此外,使用一种新的锝全身模型计算了99Tc的摄入量和剂量,并与国际放射防护委员会推荐的现行模型计算的摄入量和剂量进行了比较。与铀剂量相比,超铀元素的器官吸收剂量显著;然而,使用新的全身模型计算的99Tc剂量也显著。使用新模型导致与99Tc相关的吸收器官剂量增加了8倍(红骨髓)至30倍(骨表面)。