Unraveling the nexus: exploring river-groundwater interaction as the primary driver of eutrophication in river ecosystems

IF 5.9 1区 地球科学 Q1 ENGINEERING, CIVIL Journal of Hydrology Pub Date : 2024-10-17 DOI:10.1016/j.jhydrol.2024.132185
Edoardo Severini , Monia Magri , Elisa Soana , Marco Bartoli
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Abstract

Over recent decades, increased agricultural activities have significantly modified nitrogen (N) and water cycles, leading to a worsening of the environmental quality and widespread eutrophication. The present work investigates the critical issue of N contamination and its impact on eutrophication in three rivers located in the central part of the Po Plain (Northern Italy), one of Europe’s hotspots of N-fertilizers input and loss to aquatic ecosystems. The primary scientific problem addressed is the role of river-groundwater interactions in exacerbating eutrophication, primarily driven by nitrate (NO3-). Historical data from the past ten years on dissolved inorganic N forms in groundwater and rivers were analyzed and interpreted in relation to different watershed managements. This analysis quantified both the volumetric and qualitative contributions of river-groundwater interactions to rivers eutrophication.
Results indicate that river-groundwater interactions can be indeed the main cause of eutrophication in intensively cultivated watersheds, with effects surpassing those of typical causes like wastewater. The study highlights how the simultaneous presence of inefficient irrigation practices promotes surface water (and groundwater) overexploitation, reducing dilution and increasing contamination. All the analyzed rivers showed localized increase in NO3- concentration and worsening of their trophic status. Given the foresaw increase in groundwater and surface water use for irrigation under climate change pressures, this research provides a crucial empirical example of future challenges for regions with high N inputs and close relations among soil, groundwater, and surface water. The findings emphasize the urgent need for improved water and agricultural management to mitigate river-groundwater interaction-induced eutrophication.
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揭示关系:探索河流生态系统富营养化的主要驱动因素--河流与地下水的相互作用
近几十年来,农业活动的增加极大地改变了氮(N)和水循环,导致环境质量恶化和普遍富营养化。本研究调查了位于波河平原(意大利北部)中部的三条河流的氮污染及其对富营养化的影响这一关键问题,波河平原是欧洲水生生态系统氮肥输入和流失的热点地区之一。研究的主要科学问题是河流与地下水之间的相互作用在加剧富营养化方面所起的作用,而富营养化主要是由硝酸盐(NO3-)引起的。我们分析了过去十年地下水和河流中无机氮溶解形式的历史数据,并结合不同的流域管理进行了解读。结果表明,河流与地下水之间的相互作用可能是导致集约耕作流域富营养化的主要原因,其影响超过了废水等典型原因。该研究强调了低效灌溉方法的同时存在如何促进地表水(和地下水)的过度开发、减少稀释和增加污染。所有被分析的河流都显示出局部地区 NO3- 浓度的增加及其营养状态的恶化。鉴于在气候变化的压力下,地下水和地表水灌溉用水量预计会增加,这项研究为氮输入量高且土壤、地下水和地表水之间关系密切的地区未来面临的挑战提供了一个重要的经验范例。研究结果强调,迫切需要改进水和农业管理,以减轻河流-地下水相互作用引起的富营养化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Hydrology
Journal of Hydrology 地学-地球科学综合
CiteScore
11.00
自引率
12.50%
发文量
1309
审稿时长
7.5 months
期刊介绍: The Journal of Hydrology publishes original research papers and comprehensive reviews in all the subfields of the hydrological sciences including water based management and policy issues that impact on economics and society. These comprise, but are not limited to the physical, chemical, biogeochemical, stochastic and systems aspects of surface and groundwater hydrology, hydrometeorology and hydrogeology. Relevant topics incorporating the insights and methodologies of disciplines such as climatology, water resource systems, hydraulics, agrohydrology, geomorphology, soil science, instrumentation and remote sensing, civil and environmental engineering are included. Social science perspectives on hydrological problems such as resource and ecological economics, environmental sociology, psychology and behavioural science, management and policy analysis are also invited. Multi-and interdisciplinary analyses of hydrological problems are within scope. The science published in the Journal of Hydrology is relevant to catchment scales rather than exclusively to a local scale or site.
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