Long-term study on the transfer of 137Cs and 90Sr from Chernobyl-contaminated soils to grain crops
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N. Arkhipov | R. M. Alexakhin | S. Krouglov | S. V. Krouglov | A. S. Filipas | N. P. Arkhipov | A. Filipas
[1] F. J. Sandalls,et al. Hot particles from Chernobyl: A review , 1993 .
[2] Cline Jf. Aging effects of the availability of strontium and cesium to plants. , 1981 .
[3] D. Adriano,et al. Long‐term root uptake of radiocesium by several crops , 1984 .
[4] George J. Newton,et al. Characteristics of radioactive particles released from the Chernobyl nuclear reactor , 1989 .
[5] D. G. Jacobs,et al. Structural implications in cesium sorption. , 1960, Health physics.
[6] V. S. Anisimov,et al. Changes in the forms of 137Cs and its availability for plants as dependent on properties of fallout after the Chernobyl nuclear power plant accident , 1994 .
[7] G. M. Desmet,et al. Influence of agricultural countermeasures on the ratio of different chemical forms of radionuclides in soil and soil solution. , 1993 .
[8] A. Maes,et al. Quantitative analysis of radiocaesium retention in soils , 1988, Nature.
[9] S. R. Jones,et al. Environmental monitoring in the vicinity of Sellafield following deposition of radioactivity from the Chernobyl accident , 1987 .
[10] G. Schlapper. Radionuclide Distribution and Transport in Terrestrial and Aquatic Ecosystems , 1986 .
[11] Brit Salbu,et al. Hot particles in accidental releases from Chernobyl and Windscale nuclear installations , 1994 .
[12] J. Hilton,et al. Chemical fractionation of radioactive caesium in airborne particles containing bomb fallout, Chernobyl fallout and atmospheric material from the Sellafield site , 1991 .
[13] G. Desmet,et al. Chemical speciation and bioavailability of elements in the environment and their relevance to radioecology. , 1991, The Science of the total environment.
[14] L. J. Middleton,et al. Behaviour of cs137 in soils and pastures a long term experiment , 1966 .
[15] P. Schuller,et al. The influence of soil parameters on 137Cs+-uptake by plants from long-term fallout on forest clearings and grassland. , 1984, Health physics.
[16] J. Bell. Transfer of Radionuclides in Natural and Semi-Natural Environments , 1990 .
[17] S. Fesenko,et al. Dynamics of 137Cs Concentration in Agricultural Products in Areas of Russia Contaminated as a Result of the Accident at the Chernobyl Nuclear Power Plant , 1995 .
[18] U. Bergström,et al. Initial observations of fallout from the reactor accident at Chernobyl , 1986, Nature.
[19] R. M. Alexakhin,et al. Countermeasures in agricultural production as an effective means of mitigating the radiological consequences of the Chernobyl accident , 1993 .
[20] S Krouglov,et al. Chemical fractionation of 90Sr, 106Ru, 137Cs and 144Ce in Chernobyl-contaminated soils: an evolution in the course of time , 1998 .
[21] N. Beresford,et al. The uptake by vegetation of chernobyl and aged radiocaesium in upland West Cumbria , 1992 .