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首页> 外文期刊>The Science of the Total Environment >Subsurface biogeochemistry is a missing link between ecology and hydrology in dam-impacted river corridors
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Subsurface biogeochemistry is a missing link between ecology and hydrology in dam-impacted river corridors

机译:在受大坝影响的河道中,地下生物地球化学是生态学与水文学之间的缺失环节

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Global investment in hydropower is rapidly increasing, fueled by a need to manage water availability and by incentives promoting renewable energy sources. This expansion poses unrecognized risks to the world's vulnerable freshwater ecosystems. While many hydropower impacts have been investigated, dam-induced alterations to subsurface processes influence river corridor ecosystem health in ways that remain poorly understood. We advocate for abetter understanding of dam impacts on subsurface biogeochemical activity, its connection to hydrology, and follow-on trophic cascades within the broader river corridor. We delineate an integrated view of hydropower impacts in which dam-induced changes to surface water flow regimes generate changes in surface-subsurface hydrologic exchange flows (HEFs) that subsequently (1) regulate resource availability for benthic microorganisms at the base of aquatic food webs and (2) impose kinetic constraints on biogeochemical reactions and organismal growth across a range of trophic levels. These HEF-driven effects on river corridor food webs, as mediated by subsurface biogeochemistry, are a key knowledge gap in our assessment of hydropower sustainability and putatively combine with other, more well-known dam impacts to result in significant changes to river corridor health. We suggest targeted laboratory and field-based studies to link hydrobiogeochemical models used to predict heat transport, biogeochemical rates, and hydrologic flow with ecological models that incorporate biomass changes in specific categories of organisms. Doing so will enable predictions of feedbacks among hydrology, temperature, biogeochemical rates, organismal abundances, and resource transfer across trophic levels. This understanding of dam impacts on subsurface hydrobiogeochemistry and its connection to the broader aquatic food web is fundamental to enabling mechanism-based decision making for sustainable hydropower operations. (C) 2018 Elsevier B.V. All rights reserved.
机译:由于需要管理水的供应和促进可再生能源的激励,全球对水电的投资正在迅速增加。这种扩张给世界脆弱的淡水生态系统带来了无法识别的风险。尽管已经研究了许多水力发电的影响,但是大坝对地下过程的影响以仍然知之甚少的方式影响着河道生态系统的健康。我们主张对大坝对地下生物地球化学活动的影响,它与水文学的联系以及在更宽泛的河道中的后续营养级联的更好的理解。我们描述了水力发电影响的综合观点,其中大坝引起的地表水流态变化产生了地表-地下水文交换流量(HEF)的变化,这些变化随后(1)调节了水生食物网基础上底栖微生物的资源可利用性,以及(2)在一系列营养水平上对生物地球化学反应和生物生长施加动力学约束。这些由HEF驱动的,由地下生物地球化学介导的对河道走廊食物网的影响,是我们评估水电可持续性的关键知识缺口,并假定与其他更著名的大坝影响相结合,从而导致河道走廊健康状况发生重大变化。我们建议进行有针对性的实验室研究和基于实地的研究,以将用于预测热传输,生物地球化学速率和水文流量的水生生物地球化学模型与纳入特定类别生物体中生物量变化的生态模型联系起来。这样做可以预测水文,温度,生物地球化学速率,生物丰度和营养级别之间的资源转移之间的反馈。对大坝对地下水生生物地球化学的影响及其与更广泛的水生食物网的联系的这种理解对于实现基于机制的可持续水电运营决策至关重要。 (C)2018 Elsevier B.V.保留所有权利。

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