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Full text: Marine radionuclide transport modelling

R. Peridriez et al 
Misumi, K., Tsumune, D., Tsubono, T., Tateda, Y., Aoyama, M., Kobayashi, T., 
Hirose, K., 2014. Factors controlling the spatiotemporal variation of 137Cs in 
seabed sediment off the Fukushima coast: implications from numerical simulations. 
J. Environ, Radioact. 136, 218-228, 
Mitchell, P.I., Vives i Batlle, J., Downes, A.B., Condren, O.M., Le6n-Vintr6, L., Sänchez- 
Cabeza, J.A., 1995, Recent observations on the physico chemical speciation of 
plutonium in the Irish Sea and the western Mediterranean. Appl. Radiat, Isot, 46, 
1175-1190. 
Mitchell, P.I., Condren, O.M., Vintro, L.L., McMahon, C.,A., 1999, Trends in plutonium, 
americium and radiocaesium accumulation and long-term bioavailability in the 
western Irish Sea mud basin. J. Environ. Radioact, 44, 223-251. 
Miyazawa, Y., Masumoto, Y., Varlamov, S.M., Miyama, T., 2012. Transport simulation 
9f the radionuclide from the shelf to the open ocean around Fukushima. Cont. Shelf 
Res, 50-51, 16-29, 
Miyazawa, Y., Masumoto, Y., Varlamov, S.M., Miyama, T., Takigawa, M., Honda, M., 
Saino, T., 2013. Inverse estimation of source parameters of oceanic radioactivity 
dispersion models associated with the Fukushima accident. Biogeosciences 10, 
2349-2363. 
Monte, L., 2002. A methodology for modelling the contamination of moving organisms 
in water bodies with spatial and time dependent pollution levels. Ecol. Model. 158, 
21-33, 
Monte, L., 2011. Customisation of the decision support system MOIRA-PLUS for 
applications to the marine environment, J. Environ. Radioact, 102, 1112-1116, 
Monte, L., Boyer, P., Brittain, J., Goutal, N., Heling, R., Kryshev, A., Kryshev, L, 
Laptev, G., Luck, M., Periäfez, R., Siclet, F., Zheleznyak, M., 2008. Testing models 
or predicting the behaviour of radionuclides in aquatic systems. Appl. Radiat, Isot. 
66, 1736-1740, 
Müller, P., von Storch, H,, 2004. Computer Modelling in Atmospheric and Oceanic 
Sciences. Springer, Germany. 
Vakano, H., Motoi, T., Hirose, K., Aoyama, M., 2010. Analysis of !97Cs concentration 
in the Pacific using a Lagrangian approach, J. Geophys. Res. 115, C06015. 
Nakano, M., Povinec, P., 2012, Long-term simulations of the 137Cs dispersion from the 
Fukushima accident in the world ocean. J. Environ. Radioact. 211, 109-115. 
Nielsen, S.P., 1995, A box model for North-East Atlantic coastal waters compared with 
radioactive tracers. J. Mar. Syst, 6, 545-560. 
Nyffeler, U.P., Li, Y.H., Santschi, P.H., 1984. A kinetic approach to describe trace 
alement distribution between particles and solution in natural aquatic systems, 
Geochim. Cosmochim, Acta 48, 1513-1522, 
Dnishi, Y., Trent, D.S., 1992, Turbulence modeling for deep ocean radionuclide disposal, 
Internat. J. Numer, Methods Fluids 15, 1059-1071, 
Orre, S., Gao, Y., Drange, H., Nielsen, J.E., 2007. A reassessment of the dispersion 
properties of ”Tc in the North Sea and the Norwegian Sea. J. Mar. Syst, 68, 
24-38. 
Oughton, D.H,, Berretzen, P., Salbu, B., Tronstad, E., 1997. Mobilisation of 1?7Cs and 
°0Sr from sediments: potential sources to Arctic water. Sci. Total Environ. 202, 
155-165, 
Pacanowski, R.C., Philander, S,.G.H., 1981. Parameterization of vertical mixing in 
numerical models of tropical oceans. J. Phys. Oceanogr. 11, 1443-1451. 
darzen, E., 1962. Stochastic Processes. Holden-Day, San Francisco. 
Periäfiez, R., 1999, Three-dimensional modelling of the tidal dispersion of non- 
zonservative radionuclides in the marine environment. Application to 239, 240-Pu 
dispersion in the eastern Irish Sea. J, Mar. Syst. 22 (1), 37-51, 
’eriäfiez, R., 2003a, Redissolution and long-term transport of radionuclides released 
‘rom a contaminated sediment: a numerical modelling study. Estuar. Coast. Shelf 
Sci, 56, 5-14, 
Periäfiez, R., 2003b. Kinetic modelling of the dispersion of plutonium in the eastern 
Irish Sea: two approaches. J. Mar, Syst. 38, 259-275, 
Deriäfiez, R., 2004. On the sensitivity of a marine dispersion model to parameters 
describing the transfers of radionuclides between the liquid and solid phases, J. 
Environ. Radioact. 73, 101-115. 
%eriäfiez, R., 2005a, Modelling the Dispersion of Radionuclides in the Marine 
Environment: An Introduction, Springer, Berlin. 
”eriäfiez, R., 2005b. GISPART: a numerical model to simulate the dispersion of 
contaminants in the strait of gibraltar. Environ, Model. Softw. 20, 797-802. 
’eriäfiez, R., 2008. A modelling study on !?Cs and 2*-29py4 behaviour in the Alborän 
Sea, western Mediterranean, J. Environ. Radioact. 99, 694-715. 
Deriäfiez, R., Bezhenar, R., Brovchenko, I, Duffa, C., Jung, K.T., Kobayashi, T., 
Lamego, F., Maderich, V., Min, B.L., Nies, H., Osvath, [I., Outola, I., Psaltaki, M., 
Suh, K.S., de With, G., 2016b. Modelling of marine radionuclide dispersion in JAEA 
MODARIA program: lessons learnt from the Baltic Sea and Fukushima scenarlos. 
Sci, Total Environ. 569/570, 594-602, 
Deriäfiez, R., Bezhenar, R., Brovchenko, IL, Jung, K.T,, Kamidara, Y., Kim, K.O., 
Kobayashi, T., Liptak, L., Maderich, V., Min, B.1., Suh, K.S., 2019. Fukushima 137Cs 
‚eleases dispersion modelling over the Pacific Ocean, Comparisons of models with 
water, sediment and biota data. J. Environ. Radioact. 198, 50-63. 
Periäfiez, R., Bezhenar, R., Brovchenko, I., Jung, K.T., Kim, K.O., Maderich, V., 2018. 
The marine k, and water/sediment interaction problem. J. Environ. Radioact. 192, 
535-647 
Environmental Modelling and Software 122 (2019) 104523 
Periäfiez, R., Bezhenar, R., Iosjpe, M., Maderich, V., Nies, H., Osvath, I, Outola, I. 
de With, G., 2015b. A comparison of marine radionuclide dispersion models for 
the Baltic Sea in the frame of IAEA MODARIA program. J. Environ. Radioact. 139. 
66-77. 
Perläfiez, R., Bezhenar, R., Min, Byung-1, Duffa, C., Jung, K., Kobayashi, T., Suh, Kyung- 
Suk, Lamego, F., Maderich, V., Nies, H., Osvath, I., Psaltaki, M., 2015a. A new 
comparison of marine dispersion model performances for Fukushima releases in 
the frame of IAEA MODARIA program, J. Environ. Radioact, 150, 247-269, 
Periäfiez, R., Casas-Rufz, M., Bolivar, J.P., 2013c. Tidal circulation, sediment and 
pollutant transport in Cädiz Bay (SW Spain): a modelling study. Ocean Eng. 69, 
60-69. 
Perläfez, R., Elliot, A.J., 2002, A particle-tracking method for simulating the dispersion 
of non-conservative radionuclides in coastal waters. J. Environ. Radioact. 58 
13-33. 
Periänez, R., Suh, Kyung-Suk, Min, Byung-Il, 2012. Local scale marine modelling 
of fukushima releases, Assessment of water and sediment contamination and 
sensitivity to water circulation description. Mar. Pollut. Bull. 64, 2333-2339. 
Periäfez, R., Suh, Kyung-Suk, Min, Byung-N, 2013b. Should we measure plutonium 
concentrations in marine sediments near Fukushima? J. Radioanal. Nucl. Chem. 
298, 635-638. 
Periäfiez, R., Suh, Kyung-Suk, Min, Byung-Il, 20168. The behaviour of !37Cs in the 
North Atlantic Ocean assessed from numerical modelling: releases from nuclear 
fuel reprocessing factories, redissolution from contaminated sediments and leakage 
from dumped nuclear wastes. Mar. Pollut. Bull. 113, 343-361. 
Perläfiez, R., Suh, Kyung-Suk, Min, Byung-Il Min, Casacuberta, N., Masqu6, P., 20132. 
Numerical modelling of the releases of ®Sr from Fukushima to the ocean: an 
evaluation of the source term. Environ. Sci. Technol. 47, 12305-12313, 
Prandle, D., 1984, A modelling study of the mixing of !?7Cs in the seas of the European 
Continental Shelf. Philos, Trans. R. Soc. Lond. Ser, A 310, 407-436, 
”reller, R., Cheng, A., 1999, Modeling the transport of radioactive contaminants in the 
Arctic. Mar, Pollut, Bull. 38, 71-91. 
Proehl, J.A., Lynch, D.R., McGuillicuddy, D.J., Ledwell, J.R., 2005. Modeling turbulent 
dispersion on the North Flank of Georges Bank using Lagrangian particle methods. 
Cont, Shelf Res. 25, 875-900, 
Protter, P.E., 2004. Stochastic Integration and Differential Equations, second ed. 
Springer, ISBN: 3-540-00313-4, 
Roland, A,, Zhang, Y.J., Wang, H.V., Meng, Y., Teng, Y.C., Maderich, V., Brovchenko, [., 
Dutour-Sikiric, M., Zanke, U., 2012. A fully coupled 3D wave-current interaction 
model on unstructured grids, J. Geophys. Res. 117, CO0J33. http://dx.doi.org/10. 
1029/2012JC007952, 
Rossi, V., Sebille, E., Gupta, A.E., Garcon, V., England, .M.H., 2013. Multi-decadal pro- 
jections of surface and interior pathways of the Fukushima Cesium-137 radioactive 
plume, Deep Sea Res. I 80, 37-46. 
Rossi, V., Sebille, E., Gupta, A.E,., Garcon, V., England, M.H., 2014, Corrigendum 
to Multi-decadal projections of surface and interior pathways of the Fukushima 
Cesium-137 radioactive plume, Deep Sea Res, I 93, 162-164. 
Rypina, 1.I., Jayne, S,R., Yoshida, S., Macdonald, A.M., Buesseler, K., 2014. Drifter-based 
estimate of the 5 year dispersal of Fukushima-derived radionuclides, J. Geophys. 
Res. Oceans 119, 8177-8193. 
Rypina, LI., Jayne, S.R., Yoshida, S., Macdonald, A.M., Douglass, E., Buesseler, K., 2013. 
Short-term dispersal of Fukushima-derived radionuclides off Japan: modeling efforts 
and model-data intercomparison. Biogeosciences 10, 4973-4990. 
Sänchez-Cabeza, J.A., Ortega, M., Merino, J., Masque, P., 2002, Long-term box 
modelling of !?7Cs in the Mediterranean Sea. J, Mar. Syst. 33-34, 457-472, 
Sanial, V., Buesseler, K.O., Charette, M.A., Nagao, $S., 2017. Unexpected source of 
Fukushima-derived radiocesium to the coastal ocean of Japan, Proc. Natl, Acad. 
Sci. 201708659. http://dx.doi.org/10.1073/pnas. 1708659114. 
Schonfeld, W., 1995, Numerical simulation of the dispersion of artificial radionuclides 
in the English Channel and the North Sea. J. Mar. Syst. 6, 529-544. 
SCJ, 2014. A Review of the Model Comparison of Transportation and Deposition of 
Radioactive Materials Released To the Environment As a Result of the Tokyo 
Electric Power Compny’s Fukushima Daiichi Nuclear Power Plant Accident. Report 
of the Sectional Committee on Nuclear Accident Committee on Comprehensive 
Synthetic Engineering, Science Council of Japan. 
Shchepetkin, A.F., McWilliams, J., 2009. Correction and Commentary for ocean 
forecasting in terrain-following coordinates: formulation and skill assessment of 
the regional ocean modeling system by Haidvogel et al. J. Comput. Phys, 227, 
3595-3624. 
Simonsen, M., Saetra, ©, Isachen, P.E., Christian Lind, O., Skjerdal, H.K., Salbu, B., 
Heldal, H.E., Gwynn, J.P., 2017. The impact of tidal and mesoscale eddy advection 
on the long term dispersion of ®”Tc from Sellafield, J. Environ. Radioact. 177. 
100-112, 
Smith, J.N., Rossi, V., Buesseler, K.O., Cullen, J.T., Cornett, J., Nelson, R., 
Macdonald, A,M., Robert, R., Kellogg, J., 2017. Recent transport history of 
Pukushima radioactivity in the northeast Pacific Ocean, Environ, Sci. Technol, 51. 
10494-10502, 
Smitb, J.G., Simmonds, J.R. (Eds.), 2009. The Methodology for Assessing the Radiolog- 
ical Consequences of Routine Releases of Radionuclides To the Environment Used 
in PC-CREAM 08, HPA-RPD-058.
	        
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