喜马拉雅山地势较高地区的 222Rn/220Rn 呼出率和室内 222Rn/220Rn 含量研究。

IF 0.8 4区 环境科学与生态学 Q4 ENVIRONMENTAL SCIENCES Radiation protection dosimetry Pub Date : 2024-07-17 DOI:10.1093/rpd/ncad322
Rohit Singh Sajwan, Veena Joshi, Naresh Kumar, Taufiq Ahamad, Sanjay Dutt, Bevinathalapura Shankarappa Kempalingappa Lavanya
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引用次数: 0

摘要

惰性放射性气体氡及其同位素钍在室内环境的陆地辐射中占主导地位。这些气体最终会分解产生放射性离子,这些离子很容易附着在气溶胶颗粒上。这项研究是在氡浓度较高的构造活跃地区进行的。这项研究获得的氡气质量呼出平均值和钍气表面呼出率分别高于 56 mBq kg-1 h-1 和 1000 mBq m-2 s-1 的全球平均值。由于呼出率较高,氡和钍的平均浓度自然也高于全球平均值(分别为 40 和 10 Bq m-3)。在 222Rn 和 220Rn 呼出率与室内 222Rn/220Rn 浓度之间没有观察到明显的相关性。222Rn、220Rn 及其后代的暴露剂量对健康没有重大风险。
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A study of 222Rn/220Rn exhalation rate and indoor 222Rn/220Rn levels in higher Himalayan terrain.

The noble radioactive gas radon and its isotope thoron dominate terrestrial radiation in the indoor environment. These gases eventually disintegrate generating radioactive ions that readily adhere to aerosol particles. This study was conducted in a tectonically active location with significant radon concentrations. The obtained average values of radon mass exhalation and thoron surface exhalation rate from this study are higher than the global average values of 56 mBq kg-1 h-1 and 1000 mBq m-2 s-1, respectively. As the exhalation rates are higher, naturally the average radon and thoron concentrations are also greater than the worldwide average values of 40 and 10 Bq m-3, respectively. No significant correlation was observed between 222Rn and 220Rn exhalation rate and indoor 222Rn/220Rn concentration. The exposure dose due to 222Rn, 220Rn and their progenies shows no significant health risk.

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来源期刊
Radiation protection dosimetry
Radiation protection dosimetry 环境科学-公共卫生、环境卫生与职业卫生
CiteScore
1.40
自引率
10.00%
发文量
223
审稿时长
6-12 weeks
期刊介绍: Radiation Protection Dosimetry covers all aspects of personal and environmental dosimetry and monitoring, for both ionising and non-ionising radiations. This includes biological aspects, physical concepts, biophysical dosimetry, external and internal personal dosimetry and monitoring, environmental and workplace monitoring, accident dosimetry, and dosimetry related to the protection of patients. Particular emphasis is placed on papers covering the fundamentals of dosimetry; units, radiation quantities and conversion factors. Papers covering archaeological dating are included only if the fundamental measurement method or technique, such as thermoluminescence, has direct application to personal dosimetry measurements. Papers covering the dosimetric aspects of radon or other naturally occurring radioactive materials and low level radiation are included. Animal experiments and ecological sample measurements are not included unless there is a significant relevant content reason.
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