Accès gratuit
Numéro |
Radioprotection
Volume 52, Numéro 1, January-March 2017
|
|
---|---|---|
Page(s) | 29 - 36 | |
DOI | https://doi.org/10.1051/radiopro/2016085 | |
Publié en ligne | 27 février 2017 |
- Amiro BD, et al. 1996. Burning radionuclide question: what happens to iodine, cesium and chlorine in biomass fires? Sci. Total Environ. 187: 93–103. [CrossRef] [PubMed] [Google Scholar]
- Dusha-Gudym SI. 2005. Transport of radioactive materials by wildland fires in the Chernobyl accident zone: how to address the problem. Int. For. Fire News 32: 119–125. [Google Scholar]
- Fawaris BH, Johanson KJ. 1994. Radiocesium in soil and plants in a forest in central Sweden. Sci. Total Environ. 157: 133–138. [Google Scholar]
- Hao WM, et al. 2009. Vegetation fires, smoke emissions, and dispersion of radionuclides in the Chernobyl exclusion zone. Dev. Environ. Sci. 8: 265–275. [Google Scholar]
- Hohl A, et al. 2012. The human health effects of radioactive smoke from a catastrophic wildfire in the Chernobyl exclusion zone: a worst case scenario. Int. Sci. Electron. J. Earth Bioresour. Life Qual. 1: 1–24. [Google Scholar]
- Kulan A. 2006. Seasonal 7Be and 137Cs activities in surface air before and after the Chernobyl event. J. Environ. Radioact. 90: 140–150. [CrossRef] [PubMed] [Google Scholar]
- Kurbatskiy NP. 1962. Technique and tactics of forest fires fighting. Moscow: Academy of Science of the USSR, 154 p. [Google Scholar]
- Lujaniene G, et al. 1997. An investigation of changes in radionuclide carrier properties. J. Environ. Radioact. 35: 71–90. [Google Scholar]
- Mousseau TA, et al. 2014. Highly reduced mass loss rates and increased litter layer in radioactively contaminated areas. Oecologia 175: 429–437. [CrossRef] [PubMed] [Google Scholar]
- National Hygienic Standards. 2001. National hygienic standards: permissible levels of 137Cs contents in the wood and other non-food forest products. Minsk: Publication Ministry of Health of Belarus, 7 p. [Google Scholar]
- Pietrzak-Flis Z, et al. 1996. Migration of 137Cs in soils and its transfer to mushrooms and vascular plants in mixed forest. Sci. Total Environ. 186: 243–250. [Google Scholar]
- Radiation Safety Standards in Belarus. 2000. Publication Ministry of Health of Belarus RCHEPH 2000. Minsk: Radiation Safety Standards in Belarus, 128 p. [Google Scholar]
- Teramage MT, et al. 2014. The role of litterfall in transferring Fukushima-derived radiocesium to a coniferous forest floor. Sci. Total Environ. 490: 435–439. [CrossRef] [PubMed] [Google Scholar]
- Yoschenko VI, et al. 2006. Resuspension and redistribution of radionuclides during grassland and forest fires in the Chernobyl exclusion zone: Part I. Fire experiments. J. Environ. Radioact. 86: 143–163. [CrossRef] [PubMed] [Google Scholar]
- Yoshida S, et al. 2004. Equilibrium of radiocesium with stable cesium within the biological cycle of contaminated forest ecosystems. J. Environ. Radioact. 75: 301–313. [CrossRef] [PubMed] [Google Scholar]
- Zibtsev SV, et al. 2015. Fires in nuclear forests: silent threats to the environment and human security. Unasylva: An Intern. J. For. For. Ind. 66: 40–51. [Google Scholar]
Les statistiques affichées correspondent au cumul d'une part des vues des résumés de l'article et d'autre part des vues et téléchargements de l'article plein-texte (PDF, Full-HTML, ePub... selon les formats disponibles) sur la platefome Vision4Press.
Les statistiques sont disponibles avec un délai de 48 à 96 heures et sont mises à jour quotidiennement en semaine.
Le chargement des statistiques peut être long.