1. 南京信息工程大学 水文气象学院,江苏,南京,210044
2. 中国水利水电科学研究院 水资源研究所,北京,100044
纸质出版:2014
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张小娜, 冯杰. 大孔隙分布对坡地产汇流及溶质运移的影响[J]. 水土保持通报, 2014,33(6):22-26.
ZHANG Xiao-na, FENG Jie. Effects of Soil Macropores Distribution on Slope Runoff Yield and Solute Transport[J]. Bulletin of Soiland Water Conservation, 2014, 33(6): 22-26.
张小娜, 冯杰. 大孔隙分布对坡地产汇流及溶质运移的影响[J]. 水土保持通报, 2014,33(6):22-26. DOI: 10.13961/j.cnki.stbctb.2014.06.011.
ZHANG Xiao-na, FENG Jie. Effects of Soil Macropores Distribution on Slope Runoff Yield and Solute Transport[J]. Bulletin of Soiland Water Conservation, 2014, 33(6): 22-26. DOI: 10.13961/j.cnki.stbctb.2014.06.011.
以室内土槽为平台
采用人工模拟降雨试验
研究了粉砂壤土中两种不同大孔隙分布情况下
土槽中土壤含水量、坡面流速、地面径流、地下径流及溶质运移的变化。结果表明
相对于面大孔隙度为19%
容积大孔隙度为0.095%的未加密型的土槽
面大孔隙度为57%
容积大孔隙度为0.285%的大孔隙加密型土槽中各层土壤含水量增加幅度、平均坡面流速及地面径流量相对偏小
地下流出现时间较早且径流量较大
地面径流中溴离子、铵根离子浓度、硝酸根离子浓度偏小。在地下水出流前期
大孔隙加密型土槽中的铵根离子浓度和浓度变化幅度都偏小
但溴离子、硝酸根离子浓度则偏大。
In order to find the effect of soil macropore distribution on overland flow and solute transport
artificial rainfall experients were carried out. The results showed that compared to original macropore soil tank
in the increased density macropore soil tank with the surface porosity of 57% and the volume porosity of 0.285%
the increasing extents of the soil water content of every layer were less
the velocity of overland flow was smaller and the runoff amount of surface was less
the runoff amount of underflow appears earlier and was more in increasing-density macropore soil tank. The results also indicated that in increased density macropore soil tank
the concentration of Br-
NH4+ and NO3- in surface runoff were lower
the concentrations of Br- and NO3- in the underflow runoff were higher in earlier stage of the groundwater outflow
but the concentration of NH4+ was lower and the increasing extend was smaller.
John R N. Preferential flow occurs in unsaturated conditions[J]. Hydrological Processes, 2012, 26(5):786-789.
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Edvina L, Laurent L, Beatrice B, et al. Modeling the influence of an artificial macropore in sandy columns on flow and solute transfer[J]. Journal of Hydrology, 2009, 376(3/4):392-402.
Tiktak A, Hendriks R F A, Boesten J, et al. A spatially distributed model of pesticide movement in Dutch macroporous soils[J]. Journal of Hydrology, 2012, 471(11):316-327.
Marcus A H, William E C, Richard B D, et al. Effect of antecedent soil moisture on preferential flow in a texture-contrast soil[J]. Journal of Hydrology, 2011, 398(3/4):191-201.
Christine S, Piotr M. Quantification of preferential flow and flow heterogeneities in an unsaturated soil planted with different crops using the environmental isotope
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O[J]. Journal of Hydrology, 2010,394(3/4):407-415.
冯杰,解河海,黄国如,等.土壤大孔隙流机理及产汇流模型[M].北京:科学出版社,2012:1-20.
张洪江,程金花,何凡,等.长江三峡花岗岩地区优先流运动及其模拟[M]. 北京:科学出版社,2006:1-20.
牛健植,余新晓.优先流问题研究及其科学意义[J].中国水土保持科学,2005,3(3):110-116.
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李建柱,冯平.基于大孔隙下渗理论的产流模型及其应用[J].天津大学学报,2008,41(4):467-470.
周明耀,余长洪,钱晓晴.基于孔隙分形维数的土壤大孔隙流水力特征参数研究[J].水科学进展,2004,17(4):466-470.
张小娜,冯杰,张超,等.不同雨强下土壤大孔隙对坡面流水动力学参数的影响[J].河海大学学报:自然科学版,2012,40(3):264-269.
张小娜,冯杰, 绍伟,等.土壤大孔隙对坡面溶质流失的影响[J].农业机械学报,2013,44(6):117-121,147.
Feng Sheng, Kang Wang, Zhang Renduo, et al. Characterizing soil preferential flow using iodine-starch staining experiments and the active region model[J]. Journal of Hydrology, 2009, 367(1/2):115-124.
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