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A global data set of soil hydraulic properties and sub-grid variability of soil water retention and hydraulic conductivity curves

机译:土壤水力特性和土壤水分保持力和水力传导率曲线的亚网格变异性的全球数据集

摘要

Agroecosytem models, regional and global climate models, as well as numerical weather prediction models require adequate parameterization of soil hydraulic properties. These properties are fundamental for describing and predicting water and energy exchange processes at the transition zone between solid Earth and Atmosphere, and regulate evapotranspiration, infiltration, and runoff generation. Hydraulic parameters describing the soil water retention (WRC) and hydraulic conductivity (HCC) curves are typically derived from soil texture via pedotransfer functions (PTFs). Resampling of those parameters for specific model grids is typically performed by different aggregation approaches such a spatial averaging and the use of dominant textural properties or soil classes. These aggregation approaches introduce uncertainty, bias and parameter inconsistencies throughout spatial scales due to nonlinear relationships between hydraulic parameters and soil texture. Therefore, we present a method to scale hydraulic parameters to individual model grids and provide a global data set that overcomes the mentioned problems. The approach is based on Miller-Miller scaling in the relaxed form by Warrick, that fits the parameters of the WRC through all sub-grid WRCs to provide an effective parameterization for the grid cell at model resolution; at the same time it preserves the information of sub-grid variability of the water retention curve by deriving local scaling parameters. Based on the Mualem van Genuchten approach we also derive the unsaturated hydraulic conductivity from the water retention functions, thereby assuming that the local parameters are also valid for this function. In addition, via the Warrick scaling parameter , information on global sub-grid scaling variance is given that enables modellers to improve dynamical downscaling of (regional) climate models or to perturb hydraulic parameters for model ensemble output generation. The present analysis is based on the ROSETTA PTF of Schaap et al. (2001) applied to the SoilGrids1km data set of Hengl et al. (2014). The example data set is provided at a global resolution of 0.25° at DOI:10.1594/PANGAEA.870605.
机译:农业生态系统模型,区域和全球气候模型以及数值天气预报模型要求对土壤水力特性进行适当的参数化。这些特性对于描述和预测固体地球与大气之间的过渡带的水和能量交换过程,调节蒸散量,入渗量和径流的产生至关重要。描述土壤水分保持力(WRC)和水力传导率(HCC)曲线的水力参数通常是通过pedotransfer函数(PTF)从土壤质地中得出的。通常通过不同的聚合方法(例如空间平均以及使用主要的纹理特性或土壤类别)对特定模型网格的那些参数进行重采样。由于水力参数和土壤质地之间的非线性关系,这些聚合方法会在整个空间范围内引入不确定性,偏差和参数不一致。因此,我们提出了一种将液压参数缩放到各个模型网格的方法,并提供了克服上述问题的全局数据集。该方法基于Warrick放松形式的Miller-Miller缩放比例,它通过所有子网格WRC拟合WRC的参数,以模型分辨率为网格单元提供有效的参数化;同时,通过推导局部缩放参数,保留了保水曲线的亚网格变化信息。基于Mualem van Genuchten方法,我们还从保水函数推导了非饱和水力传导率,从而假设局部参数对该函数也有效。此外,通过Warrick缩放参数,可以获取有关全局子网格缩放方差的信息,从而使建模人员能够改善(区域)气候模型的动态缩小比例,或扰动水力参数来生成模型集合输出。本分析基于Schaap等人的ROSETTA PTF。 (2001年)适用于Hengl等人的SoilGrids1km数据集。 (2014)。在DOI:10.1594 / PANGAEA.870605上以0.25°的全局分辨率提供示例数据集。

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