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Estimating hydraulic conductivity of internal drainage for layered soils in situ

机译:估算层状土壤内部排水的水力传导率

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The soil hydraulic conductivity (K function) of three layered soils cultivated at Paradys Experimental Farm, near Bloemfontein (South Africa), was determined from in situ drainage experiments and analytical models. Pre-ponded monoliths, isolated from weather and lateral drainage, were prepared in triplicate on representative sites of the Tukulu, Sepane and Swartland soil forms. The first two soils are also referred to as Cutanic Luvisols and the third as Cutanic Cambisol. Soil water content (SWC) was measured during a 1200 h drainage experiment. In addition soil physical and textural data as well as saturated hydraulic conductivity (K_s) were derived. Undisturbed soil core samples of 105mm with a height of 77mm from soil horizons were used to measure soil water retention curves (SWRCs). Parameterization of SWRC was through the Brooks and Corey model. Kosugi and van Genuchten models were used to determine SWRC parameters and fitted with a RMSE of less 2 %. The SWRC was also used to estimate matric suctions for in situ drainage SWC following observations that laboratory and in situ SWRCs were similar at near saturation. In situ K function for horizons and the equivalent homogeneous profiles were determined. Model predictions based on SWRC overestimated horizons K function by more than three orders of magnitude. The van Genuchten-Mualem model was an exception for certain soil horizons. Overestimates were reduced by one or more orders of magnitude when inverse parameter estimation was applied directly to drainage SWC with HYDRUS-1D code. Best fits (R~2 ≥0.90) were from Brooks and Corey, and van Genuchten-Mualem models. The latter also predicted the profiles' effective K function for the three soils, and the in situ based function was fitted with R~2 ≥0.98 irrespective of soil type. It was concluded that the inverse parameter estimation with HYDRUS-1D improved models' K function estimates for the studied layered soils.
机译:根据现场排水实验和分析模型,确定了在南非布隆方丹附近的帕拉迪斯实验农场种植的三层土壤的土壤导水率(K函数)。在Tukulu,Sepane和Swartland土壤形态的代表性地点,一式三份制备了与天气和侧向排水隔离的预先处理的整体结构。前两种土壤也称为Cutanic Luvisols,第三种土壤为Cutanic Cambisol。在1200小时的排水实验中测量了土壤含水量(SWC)。此外,还导出了土壤物理和质地数据以及饱和导水率(K_s)。用105mm的未扰动土壤核心样品(距土壤层高77mm)测量土壤保水曲线(SWRC)。 SWRC的参数化是通过Brooks和Corey模型进行的。使用Kosugi和van Genuchten模型确定SWRC参数,并拟合出小于2%的RMSE。在观察到实验室和现场SWRC在接近饱和时相似后,SWRC还用于估算原位排水SWC的基质吸力。确定了地平线的原位K函数和等效的均匀剖面。基于SWRC的模型预测高估了视野K函数超过三个数量级。 van Genuchten-Mualem模型是某些土壤层的例外。当使用HYDRUS-1D代码将反参数估计直接应用于排水SWC时,高估会减少一个或多个数量级。最佳拟合(R〜2≥0.90)来自Brooks和Corey,以及van Genuchten-Mualem模型。后者还预测了剖面在三种土壤中的有效K函数,并且基于原位的函数与R〜2≥0.98拟合,而与土壤类型无关。得出的结论是,使用HYDRUS-1D进行的反参数估计改进了所研究层状土模型的K函数估计。

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