Correchel V, Bacchi O O S, De Maria I C. Erosion rates evaluated by the 137Cs technique and direct measurements on long-term runoff plots under tropical conditions. Soil & Tillage Research,2006, 86:199~208
[2]
Walling D E, He Q. The global distribution of bomb derives 137Cs reference inventories. Final report on IAEA technical contract 10361/RO-R1.Exeter: University of Exeter Press, 2000:1~11.
Gyuricza V, Dupré de B H, Declerck S. Effect of potassium and phosphorus on the transport of radiocesium by arbuscular mycorrhizal fungi. Journal of Environmental Radioactivity, 2008, doi:10.1016/j.jenvrad.2008.04.002.
[7]
Nakamaru Y,Ishikawa N,Tagami K,et al. Role of soil organic matter in the mobility of radiocesium in agricultural soils common in Japan. Colloids and Surfaces A: Physicochem. Eng. Aspects, 2007, 306:111~117.
Kinnersley R P, Goddard A J H, Minski M J, et al. Interception of caesium-contaminated rain by vegetation.Atmospheric Environment, 1997, 31(8):1137~1145.
[13]
Madoz-Escande C, Santucci P. Weather-dependent change of cesium, strontium, barium and tellurium contamination deposited as aerosols on various cultures. Journal of Environmental Radioactivity, 2005, 84:417~439.
[14]
罗哲贤.植被带布局对局地流场的作用.地理研究,1992,11(1):15~22.
[15]
Cammeraat L H. A review of two strongly contrasting geomorphological systems within the context of scale. Earth Surface Processed and Landforms, 2002, 27:1201~1222.
[16]
Li Y, Poesen J, Yang J C, et al. Evaluating gully erosion using 137Cs and 210Pb/137Cs ratio in a reservoir catchment. Soil & Tillage Research,2003, 69:107~115.
Collins A L, Walling D E, Sichingabula H M, et al. Using 137Cs measurements to quantify soil erosion and redistribution rates for areas under different land use in the Upper Kaleya River basin, southern Zambia. Geoderma, 2001, 104:299~323.
[21]
Bujan A, Santanatoglia O J, Chagas C, et al. Soil erosion evaluation in a small basin through the use of 137Cs technique. Soil & Tillage Research, 2003, 69:127~137.
Mabit L, Bernard C, Laverdière M R. Assessment of erosion in the Boyer River watershed (Canada) using a GIS oriented sampling strategy and 137Cs measurements. Catena, 2007, 71:242~249.
[26]
Zhang X, Zhang Y, Wen A. Assessment of soil losses on cultivated land by using the 137Cs technique in the upper Yangtze River Basin of China. Soil & Tillage Research, 2003, 69: 99~106.
[27]
Handl J, Sachse R, Jakob D, et al. Accumulation of 137Cs in Brazilian soils and its transfer to plants under different climatic conditions. Journal of Environmental Radioactivity, 2008, 99: 271~287.
Plsson S E, Howard B J, Wright S M. Prediction of spatial variation in global fallout of 137Cs using precipitation. Science of the Total Environment, 2006, 367:745~756.
Schoorl J M, Boix F C, de Meijer R J, et al. The 137Cs technique applied to steep Mediterranean slopes (Part I): The effects of lithology, slope morphology and land use. Catena, 2004, 57:15~34.
[32]
Taro U, Takahisa M, Akitsu K, et al.中国东南部利用铯- 137观测荒坡土壤侵蚀的局限性. 中国水土保持,2002,(7): 36.
Alonso-Hernández C M, Cartas-águila H, Díaz-Asencio M, et al. Atmospheric deposition of 137Cs between 1994 and 2002 at Cienfuegos, Cuba. Journal of Environmental Radioactivity, 2006, 88: 199~204
[35]
Wright S M, Howard B J, Strand P. Prediction of 137Cs deposition from atmospheric nuclear weapons tests within the Arctic. Environmental Pollution, 1999, 104: 131~143.
Sutherland R A. Caesium-137 soil sampling and inventory variability in reference locations:A literature survey. Hydrological Processes, 1996, 10:43~53.