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Towards a simple representation of chalk hydrology in land surface modelling

机译:在陆地表面建模中简单表达粉笔水文学

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Modelling and monitoring of hydrological processes in the unsaturated zone of chalk, a porous medium with fractures, is important to optimize water resource assessment and management practices in the United Kingdom?(UK). However, incorporating the processes governing water movement through a chalk unsaturated zone in a numerical model is complicated mainly due to the fractured nature of chalk that creates high-velocity preferential flow paths in the subsurface. In general, flow through a chalk unsaturated zone is simulated using the dual-porosity concept, which often involves calibration of a relatively large number of model parameters, potentially undermining applications to large regions. In this study, a simplified parameterization, namely the Bulk Conductivity?(BC) model, is proposed for simulating hydrology in a chalk unsaturated zone. This new parameterization introduces only two additional parameters (namely the macroporosity factor and the soil wetness threshold parameter for fracture flow activation) and uses the saturated hydraulic conductivity from the chalk matrix. The BC model is implemented in the Joint UK Land Environment Simulator?(JULES) and applied to a study area encompassing the Kennet catchment in the southern UK. This parameterization is further calibrated at the point scale using soil moisture profile observations. The performance of the calibrated BC model in JULES is assessed and compared against the performance of both the default JULES parameterization and the uncalibrated version of the BC model implemented in JULES. Finally, the model performance at the catchment scale is evaluated against independent data sets (e.g. runoff and latent heat flux). The results demonstrate that the inclusion of the BC model in JULES improves simulated land surface mass and energy fluxes over the chalk-dominated Kennet catchment. Therefore, the simple approach described in this study may be used to incorporate the flow processes through a chalk unsaturated zone in large-scale land surface modelling applications.
机译:在不饱和白垩(一种具有裂缝的多孔介质)中的水文过程的建模和监测,对于优化英国的水资源评估和管理实践非常重要。但是,将控制水通过白垩不饱和带运动的过程纳入数值模型十分复杂,这主要是由于白垩的断裂特性在地下产生了高速优先流动路径。通常,使用双孔隙率概念模拟流过白垩不饱和带的流量,该概念通常涉及相对大量模型参数的校准,这可能会破坏对大面积区域的应用。在这项研究中,提出了一种简化的参数化模型,即“电导率”(BC)模型,用于模拟粉笔非饱和带中的水文学。这种新的参数化方法仅引入了两个附加参数(即大孔隙度因子和用于裂缝流动激活的土壤湿度阈值参数),并使用了白垩矩阵中的饱和水力传导率。 BC模式是在英国联合土地环境模拟器(JULES)中实现的,并应用于涵盖英国南部Kennet集水区的研究区域。使用土壤湿度剖面观测值,可以在点刻度上进一步校准此参数化设置。评估了JULES中校准后的BC模型的性能,并将其与默认JULES参数化性能和在JULES中实现的BC模型的未校准版本的性能进行了比较。最后,根据独立的数据集(例如径流和潜热通量)评估流域尺度上的模型性能。结果表明,JULES中包含BC模型可以改善白垩为主的Kennet流域的模拟土地表面质量和能量通量。因此,本研究中描述的简单方法可以用于在大型陆地表面建模应用中合并通过白垩不饱和带的流动过程。

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