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Modelling water flow and soil erosion in clayey, subsurface drained agricultural fields

机译:对黏土,地下排水农田中的水流和土壤侵蚀进行建模

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摘要

Soil erosion in clayey, subsurface drained agricultural fields in Finland can cause problems due to the export of suspended sediment and sediment-bound nutrients into nearby waterways. Suspended sediment is transported from the field via two main hydrological pathways: 1) surface runoff and 2) preferential flow in macropores to subsurface drains. In clayey fields especially, the sediment load via the subsurface drains can be a considerable part of the annual load. The mechanisms contributing to the sediment load during the growing season and the following autumn were quantified with a new numerical model (FLUSH) developed in the study, using sample data from two clayey, subsurface drained field sections in southern Finland. The simulated field was computationally divided into two-dimensional overland and three-dimensional subsurface domains. Existing mechanistic approaches were applied to describe both surface and subsurface domain processes in the model. A dual-permeability model can simultaneously simulate flow in both soil matrix and macropore systems. The model supports simulation of suspended sediment transport in macropores, drainage systems, soil swelling and shrinkage processes and the effects of cropping and tillage operations on water and sediment yields. A new pentadiagonal matrix algorithm-based solution was developed to directly solve subsurface flow in both pore systems. A custom time integration method was derived to run the solution algorithms with different time steps in concurrent fashion. All the finite volume-based partial differential equation solution algorithms were parallelised with the OpenMP application interface. Computational grids, created with an automatic grid generation system, were used to test the effects of grid resolution on results. The numerical model successfully described water flow and soil erosion in the study fields indicating that the hypothesised mechanisms for water flow and soil erosion were appropriate. The simulation results confirmed that preferential flow has a profound impact on field-scale hydrology. Runoff distribution between surface runoff and drainflow changed in the autumn due to tillage operations and soil swelling. Soil erosivity also increased after autumn tillage. In the simulations, hydraulic erosion was the primary process leading to high erosion rates in the Sjökulla field. In the Hovi field, lack of surface runoff notably lowered the sediment loads. Simulations with 1-D and 2-D grids indicated that the application of a 3-D model to undulating, clayey, subsurface drained fields was well justified. Tests with spatial variation of macroporosity presented evidence that the spatial variability of soil properties has a notable effect on runoff and sediment loads.
机译:芬兰的黏土和地下排水农田的土壤侵蚀可能会引起问题,这是由于悬浮的沉积物和与沉积物结合的养分向附近水道的出口。悬浮的泥沙通过两个主要的水文路径从田间运输:1)地表径流和2)大孔中的优先流向地下排水沟。特别是在黏土田中,通过地下排水管的沉积物负荷可能是年负荷的相当一部分。利用研究中开发的一种新的数值模型(FLUSH),利用来自芬兰南部两个黏土,地下排水田地段的样本数据,对在生长季节和次年秋天造成泥沙负荷的机理进行了量化。模拟场在计算上分为二维陆上区域和三维地下区域。现有的力学方法被应用于描述模型中的表面和地下区域过程。双渗透模型可以同时模拟土壤基质和大孔系统中的流动。该模型支持模拟大孔,排水系统,土壤膨胀和收缩过程中的悬浮泥沙运移,以及耕作和耕作操作对水和泥沙产量的影响。开发了一种新的基于五对角矩阵算法的解决方案,以直接解决两个孔隙系统中的地下流动。导出了一种自定义的时间积分方法,以并发方式以不同的时间步长运行求解算法。所有基于有限体积的偏微分方程求解算法都与OpenMP应用程序界面并行化。使用自动网格生成系统创建的计算网格用于测试网格分辨率对结果的影响。数值模型成功地描述了研究领域中的水流和土壤侵蚀,表明假设的水流和土壤侵蚀机制是适当的。仿真结果证实优先流对田间规模的水文学有深远的影响。由于耕作和土壤膨胀,秋季地表径流和排水流之间的径流分布发生了变化。秋季耕作后土壤侵蚀力也增加。在模拟中,水力侵蚀是导致Sjökulla油田高侵蚀率的主要过程。在霍维油田,缺乏地表径流显着降低了泥沙负荷。用1-D和2-D网格进行的模拟表明,将3-D模型应用于起伏的黏土地下排水场是合理的。大孔隙度空间变化的试验表明,土壤性质的空间变化对径流和沉积物负荷有显着影响。

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    Warsta Lassi;

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  • 年度 2011
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