Simulating the Dispersion Behavior of Indoor Thoron Using Computational Fluid Dynamics (CFD)

被引:0
作者
Vandana Devi
R. P. Chauhan
机构
[1] National Institute of Technology,Department of Physics
来源
MAPAN | 2022年 / 37卷
关键词
Radon; Thoron; Simulation; Radioactive gas; CFD;
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摘要
Presence of indoor radon and thoron due to exhalation from soil and building materials has become increasingly recognized potential background radiation risk. This study presents the thoron behavior influencing indoor air quality in terms of concentration and distribution using the technique of computational fluid dynamics (CFD) in three dimensions. A model room of volume about 35 m3 was selected and the thoron is studied inside the domain where all walls act as source of thoron by exhalation process. Obtained thoron contours in the room show its inhomogeneous activity distribution. Thoron wall profile is also studied and shows the higher pollutant concentration near source. Results for thoron level and its distribution of the present simulation scenario agreed well with the analytical results. Stagnant zones where the level is higher than average concentration are found in the domain coinciding with corners which are not much influenced by the airflow profile. The study is important for estimation of health risk due to thoron by knowing its exact dispersion and helpful in mitigation strategies.
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页码:495 / 503
页数:8
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[1]  
Nazir S(2020)Simultaneous measurements of radon, thoron and their progeny for inhalation dose assessment in indoors of Srinagar, J&K, India J. Radioanal. Nucl. Chem. 325 315-328
[2]  
Simnani S(2018)Background Radiation Measurement and the Assessment of Radiological Impacts due to Natural Radioactivity Around Itakpe Iron-Ore Mines Mapan 33 271-280
[3]  
Mishra R(2016)Effect of 220 Rn gas concentration distribution on its transmission from a delay chamber: evolving a CFD-based uniformity index Radiat. Prot. Dosim. 168 546-552
[4]  
Sharma T(2011)Simulation of thoron and thoron progeny concentrations in the indoor environment J. Build. Phys. 35 101-127
[5]  
Masood S(2017)Seasonal variability of equilibrium factor and unattached fractions of radon and thoron in different regions of Punjab, India J. Environ. Radioact. 167 110-116
[6]  
Isinkaye OM(2017)Study of radon dispersion in typical dwelling using CFD modeling combined with passive-active measurements Radiat. Phys. Chem. 139 40-48
[7]  
Adeleke S(2014)Modeling of indoor radon concentration from radon exhalation rates of building materials and validation through measurements J. Enviro. Radioact. 127 50-55
[8]  
Isah DA(2011)CFD modelling of thoron and thoron progeny in the indoor environment Radiat. Prot. Dosim. 145 138-144
[9]  
Agarwal TK(2015)Measurements and CFD modeling of indoor thoron distribution Atmos. Environ. 105 7-13
[10]  
Joshi M(2010)Why is 220Rn (thoron) measurement important? Radiat. Prot. Dosimetry 141 335-339