放射性核酸从燃煤炉中的分散:地球环境过程,潜在风险和管理
Muhibul Munim1,2, Rahat Khan3, Md Kawsaruzzaman1,2
1Institute of Nuclear Science & Technology, Bangladesh Atomic Energy Commission (BAEC), Savar, Dhaka, 1349, Bangladesh.
Archives of environmental contamination and toxicology
|October 30, 2024
概括
研究了来自煤炉的天然放射性物质 (NORM),包括-226,-232和-40. 散射通过空气动力学对流和水力动力学浸出发生,对附近的人口构成健康风险.
科学领域:
- 环境科学 环境科学
- 放射学科学 放射学科学
- 地质化学 地质化学
背景情况:
- 煤制炉是天然放射性物质 (NORM) 的重要来源.
- 了解NORM (-226,-232,-40) 的分布和分散对于环境和健康风险评估至关重要.
研究的目的:
- 调查NORM从煤炭炉中的分布和分散机制.
- 分析煤炭,灰,地表土壤和地下土壤样本中的NORM.
主要方法:
- 系统地采集煤炭,灰和土壤的样本 (n=60).
- 使用高纯度 (HPGe) 探测器和中子激活分析 (NAA) 的分析.
- 量化 (U), (Th) 和 (K) 以确定放射性.
主要成果:
- 与全球平均水平相比,煤炭样本显示高40K水平.
- 灰样本具有显著更高的Ra,Th和K活动.
- 土壤样本显示NORM活动超过了全球平均水平,在地表和地底之间存在差异.
结论:
- 空气动力对流和水力动力液是炉NORM的主要分散机制.
- 地化学流动性,溶解性,降雨量和风向影响NORM分散.
- 较高的NORM水平带来了长期的致癌风险,以及因吸入煤炭飞灰而造成的直接健康危害.
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