>There is increasing evidence of water temperature being a key controlling factor of stream ecosystem metabolism. Although the focus of research c'/> Primary productivity and climate change in Austrian lowland rivers
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Primary productivity and climate change in Austrian lowland rivers

机译:奥地利低地河流的初级生产力和气候变化

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>There is increasing evidence of water temperature being a key controlling factor of stream ecosystem metabolism. Although the focus of research currently lies on carbon emissions from fluvial networks and their potential role as positive climate feedback, it is also important to estimate the risk of eutrophication streams will be exposed to in the future. In this work, a methodological approach is developed to create a scientific basis for such assessment and is applied to two Austrian lowland rivers with significantly different characteristics. Gross primary productivity (GPP) is determined through the open diel oxygen method and its temperature dependence is quantified based on the metabolic theory of ecology. This relationship is combined with the outcomes of a climate change scenario obtained through a novel integrated modelling framework. Results indicate that in both rivers, a 1.5°C warming would provoke an increase of GPP of 7–9% and that such an increase would not be limited by nutrient availability. The results further suggest that the situation for the relatively shallow river might be more critical, given that its GPP values in summer are five times higher than in the deeper murky river.
机译: >越来越多的水温证据是流生态系统新陈代谢的关键控制因素。虽然研究的重点目前位于河流网络中的碳排放及其作为积极的气候反馈的潜在作用,但估计富营养化流的风险也将未来暴露。在这项工作中,开发了一种方法论方法,为这种评估创造科学依据,并应用于两个奥地利低地河流,具有明显不同的特点。通过开口二极管氧法确定总初级生产率(GPP),并根据生态学的代谢理论来量化其温度依赖性。这种关系与通过新型集成建模框架获得的气候变化情景的结果相结合。结果表明,在两个河流中,1.5°C的变暖会引起7-9%的GPP增加,并且这种增加不会受营养可用性的限制。结果进一步表明,相对较浅的河流的情况可能更为重要,因为夏天的GPP价值比在更深的Myky河流中的五倍高。

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