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首页> 外文期刊>The Science of the Total Environment >Quantifying the combined effects of land use and climate changes on stream flow and nutrient loads: A modelling approach in the Odense Fjord catchment (Denmark)
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Quantifying the combined effects of land use and climate changes on stream flow and nutrient loads: A modelling approach in the Odense Fjord catchment (Denmark)

机译:量化土地利用和气候变化对溪流和养分负荷的综合影响:欧登塞峡湾流域的一种建模方法(丹麦)

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AbstractWater pollution and water scarcity are among the main environmental challenges faced by the European Union, and multiple stressors compromise the integrity of water resources and ecosystems. Particularly in lowland areas of northern Europe, high population density, flood protection and, especially, intensive agriculture, are important drivers of water quality degradation. In addition, future climate and land use changes may interact, with uncertain consequences for water resources. Modelling approaches have become essential to address water issues and to evaluate ecosystem management. In this work, three multi-stressor future storylines combining climatic and socio-economic changes, defined at European level, have been downscaled for the Odense Fjord catchment (Denmark), giving three scenarios: High-Tech agriculture (HT), Agriculture for Nature (AN) and Market-Driven agriculture (MD). The impacts of these scenarios on water discharge and inorganic and organic nutrient loads to the streams have been simulated using the Soil and Water Assessment Tool (SWAT). The results revealed that the scenario-specific climate inputs were most important when simulating hydrology, increasing river discharge in the HT and MD scenarios (which followed the high emission 8.5 representative concentration pathway, RCP), while remaining stable in the AN scenario (RCP 4.5). Moreover, discharge was the main driver of changes in organic nutrients and inorganic phosphorus loads that consequently increased in a high emission scenario. Nevertheless, both land use (via inputs of fertilizer) and climate changes affected the nitrate transport. Different levels of fertilization yielded a decrease in the nitrate load in AN and an increase in MD. In HT, however, nitrate losses remained stable because the fertilization decrease was counteracted by a flow increase. Thus, our results suggest that N loads will ultimately depend on future land use and management in an interaction with climate changes, and this knowledge is of utmost importance for the achievement of European environmental policy goals.Graphical abstractDisplay OmittedHighlightsWe calibrated a SWAT model for discharge and four nutrients in the Odense catchment.We downscaled three future storylines focusing on climate and land use changes.Changes in land use alone showed an impact on NO3loss due to changes in fertilization.Discharge, organic nutrients and PO43−loads will increase under high emissions.Both land use and climate changes will interact regarding nitrate loads.
机译: 摘要 水污染和水短缺是欧盟面临的主要环境挑战,多种压力源损害了水资源和生态系统的完整性。特别是在北欧低地地区,高人口密度,防洪保护,尤其是集约化农业,是造成水质下降的重要驱动力。此外,未来的气候和土地利用变化可能相互作用,从而对水资源造成不确定的后果。建模方法对于解决水资源问题和评估生态系统管理已变得至关重要。在这项工作中,针对欧登塞峡湾集水区(丹麦),缩小了在欧洲范围定义的结合气候和社会经济变化的三个多压力未来故事情节,给出了三种方案:高科技农业(HT),自然农业(AN)和市场驱动农业(MD)。使用土壤和水评估工具(SWAT)模拟了这些方案对水排放以及河流中无机和有机养分负载的影响。结果表明,特定情景下的气候输入在模拟水文学时最重要,在HT和MD情景下(遵循高排放8.5代表浓度路径,RCP)增加河流流量,而在AN情景下保持稳定(RCP 4.5) )。此外,排放是有机养分和无机磷负荷变化的主要驱动力,因此在高排放情景下会增加。然而,土地使用(通过肥料的投入)和气候变化都影响了硝酸盐的运输。施肥水平不同,AN中硝酸盐含量降低,MD升高。然而,在HT中,硝酸盐损失保持稳定,因为流量增加抵消了施肥减少。因此,我们的结果表明,氮负荷最终将取决于与气候变化相互作用的未来土地使用和管理,而这一知识对于实现欧洲环境政策目标至关重要。 图形摘要 省略显示 < ce:abstract xmlns:ce =“ http://www.elsevier.com/xml/common/dtd” xmlns =“ http://www.elsevier.com/xml/ja/dtd” id =“ ab0015” class = “ author-highlights” xml:lang =“ zh-cn” view =“ all”> 突出显示 •< / ce:label> 我们为欧登塞流域的排放量和四种营养素校准了SWAT模型。 < ce:list-item id =“ li0010”> 我们缩减了三个未来的故事情节,重点关注气候和土地用途的变化。 仅土地用途的变化就对NO 3 应有的损失产生了影响 排泄物,有机营养物质和PO 4 3 − 在高排放下会增加。 土地用途和气候变化都会因硝酸盐负荷而相互作用。

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