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Response of hydrological processes to input data in high alpine catchment : an assessment of the Yarkant River basin in China

机译:水文过程对高山流域输入数据的响应:对中国叶尔羌河流域的评估

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摘要

Most studies of input data used in hydrological models have focused on flow; however, point discharge data negligibly reflect deviations in spatial input data. To study the effects of different input data sources on hydrological processes at the catchment scale, eight MIKE SHE models driven by station-based data (SBD) and remote sensing data (RSD) were implemented. The significant influences of input variables on water components were examined using an analysis of the variance model (ANOVA) with the hydrologic catchment response quantified based on different water components. The results suggest that compared with SBD, RSD precipitation resulted in greater differences in snow storage in the different elevation bands and RSD temperatures led to more snowpack areas with thinner depths. These changes in snowpack provided an appropriate interpretation of precipitation and temperature distinctions between RSD and SBD. For potential evapotranspiration (PET), the larger RSD value caused less plant transpiration because parameters were adjusted to satisfy the outflow. At the catchment scale, the spatiotemporal distributions of sensitive water components, which can be defined by the ANOVA model, indicate that this approach is rational for assessing the impacts of input data on hydrological processes.
机译:水文模型中使用的大多数输入数据研究都集中在流量方面。但是,点排放数据可以忽略不计地反映空间输入数据中的偏差。为了研究流域尺度上不同输入数据源对水文过程的影响,实施了八个基于站台数据(SBD)和遥感数据(RSD)的MIKE SHE模型。使用方差模型(ANOVA)的分析来检查输入变量对水分量的重大影响,并基于不同水分量对水文集水响应进行量化。结果表明,与SBD相比,RSD降水导致不同海拔范围内积雪的差异更大,而RSD温度导致更多的积雪区域,深度更薄。积雪的这些变化为RSD和SBD之间的降水和温度差异提供了适当的解释。对于潜在的蒸散量(PET),较大的RSD值导致较少的植物蒸腾量,因为已对参数进行了调整以满足流出量。在流域尺度上,可以通过ANOVA模型定义的敏感水分量的时空分布表明,这种方法对于评估输入数据对水文过程的影响是合理的。

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