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首页> 外文期刊>The Science of the Total Environment >Mapping landscape-level hydrological connectivity of headwater wetlands to downstream waters: A catchment modeling approach - Part 2
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Mapping landscape-level hydrological connectivity of headwater wetlands to downstream waters: A catchment modeling approach - Part 2

机译:绘制源头湿地与下游水域的景观级水文连通性:集水区建模方法-第2部分

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摘要

In Part 1 of this two-part manuscript series, we presented an effective assessment method for mapping inundation of geographically isolated wetlands (GIWs) and quantifying their cumulative landscape-scale hydrological connectivity with downstream waters using time series remotely sensed data (Yeo et al., 2018). This study suggested strong hydrological coupling between GIWs and downstream waters at the seasonal timescale via groundwater. This follow-on paper investigates the hydrological connectivity of GIWs with downstreamwaters and cumulativewatershed-scale hydrological impacts overmultiple time scales. Modificationsweremade to the representation ofwetland processes within the Soil andWater Assessment Tool (SWAT). A version ofSWATwith improved wetland function, SWAT-WET, was applied to Greensboro Watershed, which is located in the MidAtlantic Region of USA, to simulate hydrological processes over 1985-2015 under two contrasting land use scenarios (i. e., presence and absence of GIWs). Comparative analysis of simulation outputs elucidated how GIWs could influence partitioning of precipitation between evapotranspiration (ET) and terrestrial water storage, and affect water transport mechanisms and routing processes that generate streamflow. Model results showed that GIWs influenced the watershed water budget and stream flow generation processes over the long-term (30 year), inter-annual, andmonthly time scales. GIWs in the studywatershed increased terrestrialwater storage during the wet season, and buffered the dynamics of shallow groundwater during the dry season. The interannual modeling analysis illustrated that densely distributed GIWs can exert strong hydrological influence on downstream waters by regulating surface water runoff, while maintaining groundwater recharge and ET under changing (wetter) climate conditions. The study findings highlight the hydrological connectivity of GIWs with downstream waters and the cumulative hydrological influence of GIWs as hydrologic sources to downstream ecosystems through different runoff processes over multiple time scales. (c) 2018 Elsevier B. V. All rights reserved.
机译:在这个由两部分组成的手稿系列的第1部分中,我们提出了一种有效的评估方法,用于绘制地理隔离的湿地(GIW)的淹没并使用时间序列遥感数据量化其与下游水域的累积景观尺度水文连通性(Yeo等。 ,2018)。这项研究表明,在季节性时间尺度上,地下水与地下水之间的水汽耦合很强。该后续论文研究了GIW与下游水域的水文连通性以及在多个时间尺度上累积的分水岭规模的水文影响。在“土壤和水评估工具”(SWAT)中对湿地过程的表示进行了修改。将具有改进的湿地功能的SWAT版本SWAT-WET应用于位于美国中大西洋地区的格林斯伯勒流域,以模拟两种相反的土地利用情景(即存在和不存在GIW)下1985-2015年的水文过程。 。对模拟输出的比较分析阐明了GIW如何影响蒸散量(ET)和地面水存储之间的降水分配,以及如何影响产生水流的水传输机制和路径选择过程。模型结果表明,GIW在长期(30年),年际和每月时间尺度上影响流域水预算和水流产生过程。研究水域中的GIW在雨季增加了陆地水的储存,并在旱季缓冲了浅层地下水的动态。年度模型分析表明,密集的GIW可以通过调节地表水径流而对下游水域产生强大的水文影响,同时在不断变化的(更好)气候条件下保持地下水的补给和ET。研究结果突出了GIW与下游水域的水文连通性以及作为水文资源的GIW在多个时间尺度上通过不同径流过程对下游生态系统的累积水文影响。 (c)2018 Elsevier B.V.保留所有权利。

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