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The effects of alterations in temperature and flow regime on organic carbon dynamics in Mediterranean river networks

机译:温度和流动方式的变化对地中海河网中有机碳动力学的影响

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It is only recently that freshwaters have been identified as important quantitative components of the carbon (C) cycle at global and regional scales. To date there are no studies that quantitatively predict the effects of alterations in temperature and flow regimes, individually, or in concert, on organic C dynamics in streams. To address this need, we applied a mechanistic model to simulate organic C dynamics in Mediterranean river networks under 27 different scenarios of altered temperature and flow regimes. We predict that the organic C dynamics in freshwaters in the Mediterranean, as well as in other semiarid regions, will be highly sensitive to global climate change owing to major increases in the degree of intermittency as well as in flood frequency and magnitude. Results indicate that flow regime alterations increase C export rates, whereas temperature alterations increase instream metabolism of organic C. However, flow regime alterations exhibit a much greater influence on C dynamics than do changes in the temperature regime. Reservoirs partly counteract the effects of flow extremes on C export rates, and their role in the C dynamics increases with increasing flow variability. The present study is one of the first studies to quantify the complex interactions between the flow and the temperature regime on C dynamics, emphasizing the key role of extreme events such as dry periods and floods, compared with overall trend effects. This information is pivotal in understanding the impact of future climate change on global C dynamics.
机译:直到最近,在全球和区域范围内,淡水才被确定为碳(C)循环的重要定量组成部分。迄今为止,还没有研究定量或单独地或一致地预测温度和流量变化对河流中有机碳动力学的影响。为了满足这一需求,我们应用了一种机械模型来模拟在温度和流量变化的27种不同情况下地中海河流网络中有机碳的动态变化。我们预测,由于间歇性程度以及洪水频率和幅度的大幅提高,地中海以及其他半干旱地区的淡水中的有机碳动态将对全球气候变化高度敏感。结果表明,流动方式的变化会增加碳的输出速率,而温度的变化会增加有机碳的内流代谢。但是,流动方式的变化比温度方式的变化对碳动力学的影响更大。储层部分抵消了极端流量对碳出口量的影响,并且它们在碳动态中的作用随着流量变化性的增加而增加。本研究是量化C动力学中流量与温度状态之间复杂相互作用的首批研究之一,与总体趋势影响相比,该研究强调了干旱和洪水等极端事件的关键作用。该信息对于理解未来气候变化对全球碳动态的影响至关重要。

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