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Field observations of soil hydrological flow path evolution over 10?millennia

机译:土壤水文流动路径进化超过10?千年的现场观察

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Preferential flow strongly controls water flow and transport in soils. It is ubiquitous but difficult to characterize and predict. This study addresses the occurrence and the evolution of preferential flow during the evolution of landscapes and here specifically during the evolution of hillslopes. We targeted a chronosequence of glacial moraines in the Swiss Alps to investigate how water flow paths evolve along with the soil-forming processes. Dye tracer irrigation experiments with a Brilliant Blue FCF solution (4 g L?1) were conducted on four moraines of different ages (30, 160, 3000, and 10 000?years). At each moraine, three dye tracer experiments were conducted on plots of 1.5 m ×1.0 m. The three plots at each moraine were characterized by different vegetation complexities (low, medium, and high). Each plot was further divided into three equal subplots for the application of three different irrigation amounts (20, 40, and 60 mm) with an average irrigation intensity of 20 mm h?1. The day after the experiment five vertical soil sections were excavated, and the stained flow paths were photographed. Digital image analysis was used to derive average infiltration depths and flow path characteristics such as the volume and surface density of the dye patterns. Based on the volume density, the observed dye patterns were assigned to specific flow type categories. The results show a significant change in the type of preferential flow paths along the chronosequence. The flow types change from a rather homogeneous matrix flow in coarse material with high conductivities and a sparse vegetation cover at the youngest moraine to a heterogeneous infiltration pattern at the medium-age moraines. Heterogeneous matrix and finger flow are dominant at these intermediate age classes. At the oldest moraine only macropore flow via root channels was observed in deeper parts of the soil, in combination with a very high water storage capacity of the organic top layer and low hydraulic conductivity of the deeper soil. In general, we found an increase in water storage with increasing age of the moraines, based on our observations of the reduction in infiltration depth as well as laboratory measurements of porosity. Preferential flow is, however, not only caused by macropores, but especially for the medium-age moraine, it seems to be mainly initiated by soil surface characteristics (vegetation patches and microtopography).
机译:优惠流动强烈控制水流和土壤中的运输。它是普遍的,但难以表征和预测。本研究解决了在山坡演化过程中景观中的优先流动的发生和进化。我们针对瑞士阿尔卑斯山的冰川冰片的次级疗程来研究水流路径如何与土壤形成过程一起发展。用辉煌的蓝色FCF解决方案(4 GL≥1)进行染料示踪剂灌溉实验(4 G L'1),在不同年龄(30,160,3000和10 000岁)的四个冰片上进行。在每个羊膜,在1.5m×1.0m的曲线上进行三个染料示踪剂实验。每个冰莴苣的三个地块的特征在于不同的植被复杂性(低,培养基和高)。每种曲线进一步分为三个相等的凹点,用于施加三种不同的灌溉量(20,40和60毫米),平均灌注强度为20mm H 2。挖掘实验五个垂直土壤部分后的第二天,拍摄染色的流动路径。数字图像分析用于导出平均渗透深度和流动路径特性,例如染料图案的体积和表面密度。基于体积密度,将观察到的染料图案分配给特定的流量类型类别。结果表明,沿着阶段的优先流动路径类型的显着变化。流动类型从具有高导电性的粗材料中的相当均匀的矩阵流动,以及在最年轻的羊膜中的稀疏植被覆盖到中年冰片中的异质渗透模式。在这些中间年龄课程中,异质基质和手指流动占主导地位。在最古老的羊膜中,在土壤的深层部分观察到通过根通道的Macropore流,与有机顶层的储蓄容量和较深的土壤的低液压导电性相结合。一般而言,我们发现羊水增长的储水量增加,基于我们对渗透深度的减少以及孔隙率的实验室测量的观察。然而,优先流量不仅是由大孔引起的,而且特别是对于中年湿地,它似乎主要由土壤表面特征(植被斑块和微拷贝)引发。

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