期刊文献+

考虑水迁移率动态变化改进土壤溶质地表流失模型 被引量:1

Modified model for solute loss from soil to surface runoff considering with dynamic water transfer rate
下载PDF
导出
摘要 农田土壤溶质的地表径流流失是农业面源污染的重要组成部分,为了更加有效预测和控制农田土壤溶质的流失,该文将水迁移率考虑为随土壤侵蚀变化而变化的函数,并修改Hydrus-1D代码数值求解土壤溶质的地表径流浓度值。利用两组已经发表的试验数据对改进的模型进行校验,研究结果表明该文模拟值与观测数据的相关系数r≥0.81,残差绝对均值和均方根差与原模型的模拟值相比,分别平均减少了35.42和60.77 mg/L,该文改进的模型能更好地模拟土壤溶质的地表径流流失规律。该文的研究成果将为实际预防和控制农业面源污染提供参考。 Solute loss from soil into surface runoff water plays a significant role in agricultural non-point source pollution. Thus, studying the mathematical model of solute loss in runoff is important for forecasting and controlling fertilizer loss in farmland. Water transfer rate is taken as the function of soil erosion in this study, and water transfer rate is not a constant but an exponent function of time, which decreases with time and finally achieves an unchangeable value, residual water transfer rate. The soil erosion based model is modified and the numerical solution of solute concentration in surface runoff water is obtained through modifying the Hydrus-1D code. And, only the solute numerical model is modified for coupling the surface loss model which is discrete with the implicit difference method in Hydrus-1D code. Two groups of published experiment data are used to verify our modified model. The results show that the related coefficients (r), between forecasted results and observed data are no less than 0.81 in all cases. Moreover, both average value of absolute residual and root-mean-square error are remarkably smaller in all cases than the values published before, with the average decrease value of 35.42 and 60.77 mg/L, respectively, which suggests that the modified model in our study is much better than original model to predict solute transfer from soil into surface runoff water. Solute concentrations in both runoff and soil profile could be simulated well. This result suggests that the modified model characterizes the solute loss process in surface runoff or in underground drainage. The solute curve for the condition with or without ponding water can be simulated with the modified model by just setting the proper parameters. The sum of solute loss in runoff increases with the rainfall increasing and decreases with the time in the single experiment. Residual water transfer rate does not change with rainfall intensity. Under non-infiltration condition, solute loss account is much higher than free drainage and control drainage conditions. Residual water transfer rate slightly changes with the infiltration rate change. Such results may suggest that the residual water transfer rate is impacted by many experiment conditions and needs to be further researched. The modified model successfully rebuilds the experiment data under different experiment conditions. The original soil erosion based model fails to capture the observation data at early time. The modified model simulates the solute loss process much well, and the simulation results show that the sum of solute loss at early 1000 s is about 50% of the total loss in surface runoff. To predict and control the surface solute loss is very important work. Water transfer rate may not be a constant actually. The study results in this paper will provide the references for preventing and controlling agricultural non-point source pollution.
出处 《农业工程学报》 EI CAS CSCD 北大核心 2016年第4期135-141,共7页 Transactions of the Chinese Society of Agricultural Engineering
基金 国家自然科学基金资助项目(51209187) 北京高等学校青年英才计划项目(YETP0653) 水资源与水电工程科学国家重点试验室开放基金项目(2013B108) 中央高校基本科研业务费资助项目
关键词 模型 土壤 径流 土壤溶质 地表径流 HYDRUS-1D 农业面源污染 Hydrus-1D models soils runoff soil solute surface runoff Hydrus-1D agricultural non-point source pollution
  • 相关文献

参考文献25

  • 1He Zhiguo, Weng Haoxuan, Ho Haoche, et al. Soil erosion and pollutant transport during Rainfall-Runoff Process[J]. Water Resourse, 2014, 41(5): 604-611.
  • 2王升,王全九,董文财,赵伟.黄土坡面不同植被覆盖度下产流产沙与养分流失规律[J].水土保持学报,2012,26(4):23-27. 被引量:54
  • 3吴秀杰,童菊秀,谭超群.土壤Cr(Ⅵ)在非线性Langmuir吸附条件下的径流流失试验与模拟[J].农业工程学报,2015,31(1):146-152. 被引量:4
  • 4Ahuja L R. Modeling soluble chemical transfer to runoff with rainfall impact as a diffusion process[J]. Soil Sci Soc Am J, 1990, 54: 312-321.
  • 5Wallach R, William A J, William F S. Transfer of chemical from soil solution to surface runoff: A diffusion-based soil model[J]. Soil Sci Soc Am Journal, 1988, 52: 612-617.
  • 6Gao B, Walter M T, Steenhuis T S, et al. Rainfall induced chemical transport from soil to runoff: Theory and experiments[J]. J Hydrol, 2004, 295(1/4): 291-304.
  • 7Fere M H, Ross J D. The nutrient submodel. In C RDAMS: A Field Scale Model for Chemicals, Runoff, and Erosion from Agricultural Management Systems, ed. W G Kniesel[R]. USDA Conserv Res Report 26. Washington, D C: USDA 1980.
  • 8Ahuja L R, Lehman O R. The extent and nature of rainfall soil interaction in the release of soluble chemicals to runoff[J]. Journal Environ Qual, 1983, 12(1): 34-40.
  • 9Zhang X C, Norton D, Nearing M A. Chemical transfer from soil solution to surface runoff[J]. Water Resour Res, 1997, 33(4): 809-815.
  • 10Tong J X, Yang J Z, Hu B X, et al. Experimental study andmathematical 552 modeling of soluble chemical transfer from unsaturated-saturated soil to surface runoff[J]. Hydrologic Processes Journal, 2010, 24: 3065-3073.

二级参考文献60

共引文献72

同被引文献10

引证文献1

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部