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Quantifying the Importance of Preferential Flow in a Riparian Buffer

机译:量化在河岸缓冲区中的优先流量的重要性

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Riparian buffers are uniquely susceptible to preferential flow due to the abundance of root channels, biological activity, and frequent wetting and drying cycles. Previous research has indicated such susceptibility and even measured the connectivity of preferential flow pathways with adjacent streams and rivers. However, limited research has attempted to partition the riparian buffer infiltration between matrix and preferential flow domains. The objectives of this research were to develop an innovative method to quantify soil matrix infiltration at the plot scale, develop a method to partition infiltration into matrix and macropore infiltration at the plot scale, and then use these methods to quantify the significance ofmacropore infiltration at a riparian buffer site. This research further demonstrated the importance of considering preferential flow processes in design tools and models to evaluate riparian buffer effectiveness. Sprinkler and runon field experiments were conducted at an establishedriparian buffer site with sandy loam soil. Trenches were installed and instrumented with soil moisture sensors along the width of the riparian buffer (i.e., along the flow path toward the stream) for detecting nonuniform flow patterns due to preferential flow. Riparian buffer parameters, including soil hydraulic parameters, were estimated using HYDRUS-ID for the sprinkler experiments and VFSMOD for the runon experiments. This research partitioned the infiltration into matrix and preferentialflow domains by assuming negligible exchange of water between the soil matrix and preferential flow pathways in comparison to the magnitude of soil matrix flow. For these experimental conditions with 0.20 to 0.48 L s'1 of runon and initial soil water contents of 0.29 to 0.32 cm3 cm'3, preferential flow accountedfor at least 27% to 32%> of the total runon water entering the riparian buffer. This corresponded to approximately 32% to 47% of the total infiltration. While increasing the riparian buffer plot soil hydraulic conductivity in single-porosity models can adequately predict the total infiltration and therefore the surface outflow from the buffer, design tools and models should specifically consider preferential flow processes to improve predictive power regarding the actual infiltration processes and correspondingly the non-equilibrium flow and solute transport mechanisms.
机译:由于丰富的根通道、生物活动和频繁的干湿循环,河岸缓冲区特别容易受到优先流的影响。之前的研究表明了这种敏感性,甚至测量了优先流路径与相邻溪流和河流的连通性。然而,有限的研究试图在基质和优先流域之间划分河岸缓冲渗透。本研究的目标是开发一种创新的方法,在地块尺度上量化土壤基质入渗,开发一种在地块尺度上将入渗划分为基质和大孔隙入渗的方法,然后使用这些方法量化河岸缓冲区大孔隙入渗的重要性。这项研究进一步证明了在设计工具和模型中考虑优先流过程的重要性,以评估河岸缓冲区的有效性。在一个已建立的具有砂壤土的地中海缓冲区进行了洒水和径流田间试验。沿着河岸缓冲区的宽度(即,沿着流向溪流的流动路径),在沟渠上安装并安装土壤水分传感器,以检测优先流导致的不均匀流动模式。河岸缓冲区参数,包括土壤水力参数,使用HYDRUS-ID进行洒水试验,使用VFSMOD进行径流试验。本研究通过假设土壤基质和优先流路径之间的水交换与土壤基质流的大小相比可以忽略不计,将入渗划分为基质和优先流区域。在这些实验条件下,径流为0.20至0.48 L s'1,初始土壤含水量为0.29至0.32 cm3 cm'3,优先流占进入河岸缓冲区的总径流的至少27%至32%。这相当于总渗透量的32%至47%。虽然在单孔隙度模型中增加河岸缓冲区土壤的水力传导率可以充分预测总入渗量,从而预测缓冲区的地表流出量,设计工具和模型应特别考虑优先流过程,以提高预测能力,实际渗透过程和相应的非平衡流动和溶质运移机制。

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