氡照射剂量换算说明。

IF 1.5 4区 环境科学与生态学 Q3 BIOLOGY Radiation and Environmental Biophysics Pub Date : 2024-08-01 Epub Date: 2024-06-17 DOI:10.1007/s00411-024-01077-0
Thomas R Beck
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引用次数: 0

摘要

研究了将氡照射量转换为有效剂量的流行病学方法。根据有效剂量的定义,剂量换算是从与低辐射相关的肺特异性损害和与氡照射相关的肺特异性损害的等值中获得的。这种方法能根据流行病学数据最可靠地估算出每次氡照射的有效剂量,并隐含了采用剂量学方法计算氡照射有效剂量所需的辐射加权系数,应用了生物动力学和剂量学模型。流行病学方法和剂量学方法的结果之间的一致性是通过对阿尔法粒子使用大约 10 的辐射加权系数来实现的,而不是国际辐射防护委员会目前使用的 20 的值。与此相反,国际放射防护委员会第 65 号文件中采用的流行病学方法,即剂量换算惯例,是基于总辐射损伤与氡照射造成的肺损伤的直接比较。随着国际放射防护委员会第 103 号文件对辐射损伤的修订,可以判定这种方法高估了每次氡照射的有效剂量,高出约 2 倍,因为肺的组织加权系数与其相关的相对损伤值不同。
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Note on dose conversion for radon exposure.

The epidemiological approach to converting radon exposure to effective dose is examined. Based on the definition of the effective dose, the dose conversion is obtained from the equivalence of lung-specific detriment associated with low-LET radiation and with radon exposure. This approach most reliably estimates effective dose per radon exposure on the basis of epidemiological data and implicitly includes the radiation weighting factor required to calculate the effective dose from radon exposure using the dosimetric approach, applying biokinetic and dosimetric models. Consistency between the results of the epidemiological and dosimetric approaches is achieved by using a radiation weighting factor of about 10 for alpha particles instead of the current ICRP value of 20. In contrast, the epidemiological approach implemented in ICRP 65, and referred to as dose conversion convention, was based on direct comparison of total radiation detriment with lung detriment from radon exposure. With the revision of radiation detriments in ICRP 103, this approach can be judged to overestimate the effective dose per radon exposure by about a factor of two because the tissue weighting factor for lung differs from the value of relative detriment to which it relates.

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来源期刊
CiteScore
4.00
自引率
5.90%
发文量
53
审稿时长
>36 weeks
期刊介绍: This journal is devoted to fundamental and applied issues in radiation research and biophysics. The topics may include: Biophysics of ionizing radiation: radiation physics and chemistry, radiation dosimetry, radiobiology, radioecology, biophysical foundations of medical applications of radiation, and radiation protection. Biological effects of radiation: experimental or theoretical work on molecular or cellular effects; relevance of biological effects for risk assessment; biological effects of medical applications of radiation; relevance of radiation for biosphere and in space; modelling of ecosystems; modelling of transport processes of substances in biotic systems. Risk assessment: epidemiological studies of cancer and non-cancer effects; quantification of risk including exposures to radiation and confounding factors Contributions to these topics may include theoretical-mathematical and experimental material, as well as description of new techniques relevant for the study of these issues. They can range from complex radiobiological phenomena to issues in health physics and environmental protection.
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