A computational modeling of airflow and radon progeny deposition in human respiratory system

被引:0
|
作者
Rabi, R. [1 ]
Oufni, L. [1 ]
Kayouh, N. [1 ]
机构
[1] Sultan Moulay Slimane Univ, Fac Sci & Tech, Dept Phys LPMM, BP 523, Beni Mellal 23000, Morocco
关键词
CFD simulation; Bronchial tree; Particle deposition; Inhalation; Radon decay; Dose conversion factor (DCF); PARTICLE DEPOSITION; TRANSPORT; THORON;
D O I
10.1007/s10967-024-09708-y
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The inhalation of radon and its decay products is the primary source of natural radiation exposure for the general population. The solid particles produced by radon decay are also radioactive and can easily penetrate deep into the lungs, causing damage to the airways. To better understand the harmful effects of inhaling radon decay, we have used a Computational Fluid Dynamics method to model the deposition of radioactive particles in the human respiratory system. This method was used to determine the effective dose resulting from exposure to radon progeny. The simulations have been conducted with representative breathing intensities of light (15 L/min), normal (30 L/min), and heavy (60 L/min) breathing under continuous breathing conditions. The numerical results show that larger particles are deposited more in the bronchi and at higher inhalation rates due to higher inertia. Furthermore, the airflow velocity field and deposition rates were obtained and discussed in detail. The dose conversion factor of radon decay products was calculated for different airflows, taking into account the deposition rates. The calculated dose conversion factor for attached fractions (6.62-11.35 mSv WLM-1) and unattached fractions (3.48-4.68 mSv WLM-1) is above the recommended range of 5.4-10.6 mSv WLM-1 obtained by the International Commission on Radiological Protection and also by the World Health Organization at a level of 10 mSv WLM-1.
引用
收藏
页码:6485 / 6496
页数:12
相关论文
共 50 条
  • [1] Computational analysis of radon progeny deposition patterns in the human respiratory system
    Rabi, R.
    Oufni, L.
    Kayouh, N.
    JOURNAL OF ENVIRONMENTAL RADIOACTIVITY, 2024, 272
  • [2] CFD modeling of radon progeny transport and deposition in the human respiratory tract
    R. Rabi
    L. Oufni
    The European Physical Journal Plus, 140 (4)
  • [3] Deposition and clearance for radon progeny in the human respiratory tract
    Ishikawa, T
    Yamada, Y
    Fukutsu, K
    Tokonami, S
    RADIATION PROTECTION DOSIMETRY, 2003, 105 (1-4) : 143 - 148
  • [4] Deposition rates of unattached and attached radon progeny in room with turbulent airflow and ventilation
    Stevanovic, N.
    Markovic, V. M.
    Nikezic, D.
    JOURNAL OF ENVIRONMENTAL RADIOACTIVITY, 2009, 100 (07) : 585 - 589
  • [5] RADON PROGENY DEPOSITION IN THE NASAL AND TRACHEOBRONCHIAL REGIONS OF THE RESPIRATORY-TRACT
    GEORGE, AC
    KNUTSON, EO
    RADIATION PROTECTION DOSIMETRY, 1992, 45 (1-4) : 689 - 693
  • [6] A Radon Progeny Deposition Model
    Guiseppe, V. E.
    Elliott, S. R.
    Hime, A.
    Rielage, K.
    Westerdale, S.
    TOPICAL WORKSHOP ON LOW RADIOACTIVITY TECHNIQUES - LRT 2010, 2011, 1338 : 95 - +
  • [7] A review on numerical studies of airflow dynamics and particle deposition in human respiratory system
    Jing, Hao
    Cui, Xinguang
    PARTICUOLOGY, 2024, 91 : 351 - 377
  • [8] Modeling energy deposition and cellular radiation effects in human bronchial epithelium by radon progeny alpha particles
    Hofmann, W
    Ménache, MG
    Crawford-Brown, DJ
    Caswell, RS
    Karam, LR
    HEALTH PHYSICS, 2000, 78 (04): : 377 - 393
  • [9] Deposition of radon progeny on indoor surfaces
    Morawska, L
    Jamriska, M
    JOURNAL OF AEROSOL SCIENCE, 1996, 27 (02) : 305 - 312
  • [10] Variability and inhomogeneity of radon progeny deposition patterns in human bronchial airways
    Hofmann, W
    Bergmann, R
    Balásházy, I
    JOURNAL OF ENVIRONMENTAL RADIOACTIVITY, 2000, 51 (01) : 121 - 136