首页> 外文期刊>Canadian Journal of Soil Science >Infiltration and drainage processes in multi-layered coarse soils
【24h】

Infiltration and drainage processes in multi-layered coarse soils

机译:多层粗土入渗过程

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Huang, M., Barbour, S. L., Elshorbagy, A., Zettl, J. D. and Si, B. C. 2011. Infiltration and drainage processes in multilayered coarse soils. Can. J. Soil Sci. 91: 169-183. Infiltration and drainage processes in multi-layered soils are complicated by contrasting hydraulic properties. The objective of this study was to evaluate the performances of the hysteretic and non-hysteretic models to simulate the infiltration and drainage processes from three different natural soil profiles containing as many as 20 texturally different layers. Hydraulic properties were estimated from soil textures using pedotransfer functions and were calibrated and validated using measured water contents during infiltration and drainage phases, respectively. The results supported the use of the Arya-Paris pedotransfer function to estimate the wetting curve when contact angles are incorporated. The unique Kozeny-Carmen equation parameter was evaluated by optimizing the estimated saturated hydraulic conductivity. The calibrated numerical model (Hydrus-1D) accurately simulated soil water content profiles and water volumes during the infiltration and drainage phases. The mean error of prediction (MEP) between the measured and estimated soil water contents varied from -0.030 to 0.010 cm(3) cm(-3), and the standard deviation of prediction (SDP) from 0.003 to 0.057 cm(3) cm(-3). The simulation was improved for more heterogeneous soil profiles when hysteresis was taken into account. The measured and simulated results indicated that the soil profile with vertical heterogeneity in soil texture can store more water than the similar textured vertically homogeneous soils under drained conditions.
机译:Huang,M.,Barbour,S. L.,Elshorbag​​y,A.,Zettl,J.D. and Si,B.C.2011。多层粗土壤中的渗透和排水过程。能够。 J.土壤科学。 91:169-183。通过对比水力特性,使多层土壤中的渗透和排水过程变得复杂。这项研究的目的是评估滞后和非滞后模型的性能,以模拟来自多达20个纹理不同层的三​​种不同天然土壤剖面的渗透和排水过程。使用pedotransfer函数根据土壤质地估算水力特性,并分别使用渗透和排水阶段测得的水含量进行校准和验证。结果支持了Arya-Paris pedotransfer函数的使用,以便在合并接触角时估算润湿曲线。通过优化估计的饱和水力传导率来评估唯一的Kozeny-Carmen方程参数。校准的数值模型(Hydrus-1D)可以准确模拟入渗和排水阶段的土壤水分概况和水量。测得的土壤水分和估计的土壤水分之间的预测平均误差(MEP)从-0.030到0.010 cm(3)cm(-3),预测的标准偏差(SDP)从0.003到0.057 cm(3)cm (-3)。考虑到磁滞现象,针对更多种非均质土壤剖面进行了改进。实测和模拟结果表明,排水条件下,土壤质地垂直非均质的土壤剖面比相似质地垂直垂直均质的土壤可存储更多的水分。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号