1,120
Views
16
CrossRef citations to date
0
Altmetric
Research Article

Finite element modeling of radon distribution in natural soils of different geophysical regions

ORCID Icon & | (Reviewing Editor)
Article: 1254859 | Received 06 Jun 2016, Accepted 25 Oct 2016, Published online: 17 Nov 2016

References

  • Al-Shereideh, S. A., Bataina, B. A., & Ershaidat, N. M. (2006). Seasonal variations and depth dependence of soil radon concentration levels in different geological formations in Deir Abu-Said District, Irbid—Jordan. Radiation Measurements, 41, 703–707.10.1016/j.radmeas.2006.03.004
  • Andersen, C. E. (2001). Numerical modelling of radon-222 entry into houses: An outline of techniques and results. Science of The Total Environment, 272, 33–42.10.1016/S0048-9697(01)00662-3
  • Antonopoulos-Domis, M., Xanthos, S., Clouvas, A., & Alifrangis, D. (2009). Experimental and theoretical study of radon distribution in soil. Health Physics, 97, 322–331.10.1097/HP.0b013e3181adc157
  • Clouvas, A., Leontaris, F., Xanthos, S., & Alifragis, D. (2016, September 24). Radon migration in soil and its relation to terrestrial gamma radiation in different locations of the greek early warning system network. Radiat Prot Dosimetry doi:10.1093/rpd/ncw277
  • Dörr, H., & Münnich, K. O. (1990). 222Rn flux and soil air concentration profiles in West_Geramny. Soil 222Rn as tracer for gas transport in the unsaturated soil zone, Tellus B, 42, 20–28.
  • Dueñas, C., Fernández, M. C., Carretero, J., & Liger, E. (1996). Measurement of 222Rn in soil concentrations in interstitial air. Applied Radiation and Isotopes, 47, 841–847.
  • Dueñas, C., Fernández, M. C., Carretero, J., Liger, E., & Pérez, M. (1997). Release of 222Rn from some soils. Annales Geophysicae, 15, 124–133.
  • Fournier, F., Groetz, J. E., Jacob, F., Crolet, J. M., & Lettner, H. (2005). Simulation of radon transport through building materials: influence of the water content on radon exhalation rate. Transport in Porous Media, 59, 197–214.10.1007/s11242-004-1489-0
  • Hafez, Y. (1995). A k-ε Turbulence model for predicting the three-dimensional velocity field and boundary shear in open and closed channels ( Ph.D Dissertation). Civil Engineering Department, Colorado State University, Fort Collins, CO.
  • Hosoda, M., Tokonami, S., Sorimachi, A., Janik, M., Ishikawa, T., Yatabe, Y., & Yamada, J. (2009). Experimental system to evaluate the effective diffusion coefficient of radon. Review of Scientific Instruments, 80, 013501–013505.10.1063/1.3049379
  • Iskandar, D., Yamazawa, H., & Iida, T. (2004). Quantification of the dependency of radon emanation power on soil temperature. Applied Radiation and Isotopes, 60, 971–973.10.1016/j.apradiso.2004.02.003
  • Jiranek, M., & Svoboda, Z. (2009). Transient radon diffusion through radon-proof membranes: A new technique for more precise determination of the radon diffusion coefficient. Building and Environment, 44, 1318–1327.10.1016/j.buildenv.2008.09.017
  • Künze, N., Koroleva, M., & Reuther, C. D. (2013). Soil gas 222Rn concentration in northern Germany and its relationship with geological subsurface structures. Journal of Environmental Radioactivity, 115, 83–96.10.1016/j.jenvrad.2012.07.009
  • Liu, G., & Si, B. C. (2009). Multi-layer diffusion model and error analysis applied to chamber-based gas fluxes measurements. Agricultural and Forest Meteorology, 149, 169–178.10.1016/j.agrformet.2008.07.012
  • Nazaroff, W. W. (1992). Radon transport from soil to air. Reviews of Geophysics, 30, 137–160.10.1029/92RG00055
  • Nazaroff, W. W., & Nero, A. V. (1988). Radon and Its Decay Products in Indoor Air. New York, NY: McGraw-Hill.
  • Olise, F. S., Akinnagbe, D. M., & Olasogba, O. S. (2016). Radionuclides and radon levels in soil and ground water from solid minerals-hosted area, south-western Nigeria. Cogent Environmental Science, 2, 1142344.
  • Papp, B., Deák, F., Horváth, Á., Kiss, Á., Rajnai, G., & Szabó, C. (2008). A new method for the determination of geophysical parameters by radon concentration measurements in bore-hole. Journal of Environmental Radioactivity, 99, 1731–1735.
  • Prasad, G., Ishikawa, T., Hosoda, M., Sorimachi, A., Janik, M., Sahoo, S. K., … Uchida, S. (2012). Estimation of radon diffusion coefficients in soil using an updated experimental system. Review of Scientific Instruments, 83, 093503–093508.10.1063/1.4752221
  • Richon, P., Klinger, Y., Tapponnier, P., Li, C., Van Der Woerd, J. V., & Perrier, F. (2010). Measuring radon flux across active faults: Relevance of excavating and possibility of satellite discharges. Radiation Measurements, 45, 211–218.10.1016/j.radmeas.2010.01.019
  • Rogers, V. C., & Nielson, K. K. (1991). Correlations for predicting air permeabilities and 222Rn diffusion coefficients of soils. Health Physics, 61, 225–230.10.1097/00004032-199108000-00006
  • Ryzhakova, N. K. (2012). Parameters of modeling radon transfer through soil and methods of their determination. Journal of Applied Geophysics, 80, 151–157.10.1016/j.jappgeo.2012.01.010
  • Sahoo, B. K., & Mayya, Y. S. (2010). Two dimensional diffusion theory of trace gas emission into soil chambers for flux measurements. Agricultural and Forest Meteorology, 150, 1211–1224.10.1016/j.agrformet.2010.05.009
  • Sahoo, B. K., Sapra, B. K., Gaware, J. J., Kanse, S. D., & Mayya, Y. S. (2011). A model to predict radon exhalation from walls to indoor air based on the exhalation from building material samples. Science of The Total Environment, 409, 2635–2641.10.1016/j.scitotenv.2011.03.031
  • Savović, S., Djordjevich, A., Tse, P. W., & Krstić, D. (2011a). Radon diffusion in an anhydrous andesitic melt: a finite difference solution. Journal of Environmental Radioactivity, 102, 103–106.10.1016/j.jenvrad.2010.10.009
  • Savović, S., Djordjevich, A., Tse, P. W., Nikezić, D., & Nikezić, D. (2011b). Explicit finite difference solution of the diffusion equation describing the flow of radon through soil. Applied Radiation and Isotopes, 69, 237–240.10.1016/j.apradiso.2010.09.007
  • Savovic, S., Djordjevich, A., & Ristic, G. (2012). Numerical solution of the transport equation describing the radon transport from subsurface soil to buildings. Radiation Protection Dosimetry, 150, 213–216.10.1093/rpd/ncr397
  • Shitrit, Y., Dody, A., Alfassi, Z. B., & Berant, Z. (2012). Measurement of 222Rn diffusion through sandy soil with solar cells photodiodes as the detector. Journal of Environmental Radioactivity, 105, 1–5.10.1016/j.jenvrad.2011.10.005
  • Speelman, W. J. (2004). Modelling and measurement of radon diffusion through soil for application on mine tailings dams ( Msc thesis). Faculty of natural Sciences, University of Western Cape, South Africa.
  • Thompson, E. G. (2005). Introduction to the finite element method, theory, programming, and applications (5th ed.). Hoboken, NJ: John Wiley & Sons.
  • Urošević, V., & Nikezić, D. (2003). Radon transport through concrete and determination of its diffusion coefficient. Radiation Protection Dosimetry, 104, 65–70.
  • World Health Organization. (2009). WHO Handbook on Indoor Radon. Retrieved from http://whqlibdoc.who.int/publications/2009/9789241547673_eng.pdf
  • Yakovleva, V. S., & Parovik, R. I. (2010). Solution of diffusion-advection equation of radon transport in many-layered geological media. Nukleonika, 55, 601–606.