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A dual-porous, inverse model of water retention to study biological and hydrological interactions in soil

机译:保留水的双孔逆模型,用于研究土壤中的生物和水文相互作用

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The deterministic modelling of bio-hydrological processes in soil requires a void structure model that is explicitly dual-porous containing fully and separately characterized macroporosity and microporosity. It should also contain information that relates the positioning of microporosity relative to macroporosity. An example of such a process is the production of nitrous oxide, in which bacteria in microporous ‘hot-spots’ are supplied with nutrients and gases through a macroporous pathway. We present a precision void-structure model that satisfies these two criteria, namely explicit macroporosity and microporosity, and their positional relationship. To demonstrate the construction of the model, we describe the modelling of a single soil, namely Warren soil from Rothamsted Research’s Woburn Experimental Farm in Bedfordshire, UK, although the modelling approach is applicable to a wide range of soils and other dual porous solids. The model is capable of fitting several fundamental properties of soil, namely water retention, aggregate size distribution, and porosity of the microporous and macroporous zones. It comprises a dendritic critical percolation path, around which are clustered the microporous regions. The saturated hydraulic conductivity ofthe dual-porous network is of the correct order of magnitude for a soil of the same density and texture as the Warren sample. Finally, we demonstrate how the preferential flow pathway in the resulting structure differs from the critical percolation pathway, and that only 4.6% by volume of the unclogged macroporosity contributes to the fluid flow through the structure.
机译:土壤中生物水文过程的确定性建模需要一个明显为双孔的孔隙结构模型,该模型必须包含完全和单独表征的大孔和微孔。它还应包含与微孔相对于大孔的位置相关的信息。这种过程的一个例子是一氧化二氮的生产,其中通过大孔途径向微孔“热点”中的细菌提供营养和气体。我们提出了一种精确的孔隙结构模型,该模型满足了这两个条件,即显式大孔和微孔及其位置关系。为了说明模型的构造,我们描述了一种单一土壤的建模,即英国Rothamsted Research公司位于英国贝德福德郡的Woburn实验农场的沃伦土壤,尽管该建模方法适用于多种土壤和其他双重多孔固体。该模型能够拟合土壤的几个基本属性,即保水性,骨料粒度分布以及微孔和大孔区域的孔隙度。它包括一个树突状临界渗流路径,围绕该路径聚集了微孔区域。对于密度和质地与沃伦样品相同的土壤,双孔网络的饱和导水率处于正确的数量级。最后,我们证明了最终结构中的优先流动路径与临界渗流路径之间的区别,并且只有4.6%的未堵塞大孔隙率有助于流体流过结构。

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