通过使用基于SSNTD的技术,测量室内放射性和从222Rn,220Rn和EECs获得的剂量
Taufiq Ahamad1, Om Prakash Nautiyal2, Manish Joshi3
1Department of Physics, HNB Garhwal University, Badshahi Thaul Campus, Tehri Garhwal 249199, India.
Radiation protection dosimetry
|July 17, 2024
概括
室内子 (222Rn和220Rn) 度和相关的α流量低于世卫组织和ICRP的安全限值. 这项研究发现,尽管数据分布异常,但自然放射性水平对居民来说是安全的.
科学领域:
- 环境科学 环境科学
- 辐射健康 辐射健康
- 大气物理学 大气物理学
背景情况:
- 同位素 (222Rn,220Rn) 和它们的后代的α流是环境空气中自然放射性的主要来源.
- 了解室内度对于评估与自然辐射暴露相关的公共健康风险至关重要.
研究的目的:
- 量化222Rn和220Rn的年度室内度.
- 为了估计从阿尔法流量暴露的年度吸入剂量.
- 将测量水平和剂量与已建立的国际安全准则进行比较.
主要方法:
- 每年室内222Rn和220Rn度的测量.
- 根据阿尔法流量计算每年吸入剂量的计算.
- 统计分析,包括对222Rn和有效平衡度 (EERC) 数据的正常性测试.
主要成果:
- 每年的室内222Rn和220Rn度分别为85±43 Bq m-3和84±36 Bq m-3.
- 这些度低于世界卫生组织 (WHO) 的100 Bq m-3.
- 计算出的每年吸入剂量远低于UNSCEAR和ICRP建议的水平.
- 正常性测试表明,222Rn和EERC数据没有正常分布.
结论:
- 研究环境中的室内度和相关的吸入剂量都在安全范围内.
- 结果表明,自然放射性对居民的放射性健康风险很小.
- 222Rn和EERC数据的非正常分布值得在未来的放射性评估中考虑.
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