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Impact of short-term climate variation and hydrology change on thermal structure and water quality of a canyon-shaped, stratified reservoir

机译:短期气候变化和水文学变化对峡谷型分层水库热力结构和水质的影响

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Climate variation can have obvious effects on hydrologic conditions, which in turn can have direct consequences for the thermal regime and quality of water for human use. In this research, weekly surveys were conducted from 2011 to 2013 to investigate how changes of climate and hydrology affect the thermal regime and water quality at the Heihe Reservoir. Our results show that the hydrology change during the flooding season can both increase the oxygen concentration and accelerate the consumption of dissolved oxygen. Continuous heavy rainfall events occurred in September 2011 caused the mixing of the entire reservoir, which led to an increase in dissolved oxygen at the bottom until the next year. Significant turbid density flow was observed following the extreme rainfall events in 2012 which leading to a rapid increase in turbidity at the bottom (up to 3000 NTU). Though the dissolved oxygen at the bottom increased from 0 to 9.02 mg/L after the rainfall event, it became anoxic within 20 days due to the increase of water oxygen demand caused by the suspended matter brought by the storm runoff. The release of compounds from the sediments was more serious during the anaerobic period after the rainfall events and the concentration of total iron, total phosphorus, and total manganese at the bottom reached 1.778, 0.102, and 0.125 mg/L. The improved water-lifting aerators kept on running after the storm runoff occurred in 2013 to avoid the deterioration of water quality during anaerobic conditions and ensured the good water quality during the mixing period. Our results suggest preventive and remediation actions that are necessary to improve water quality and status.
机译:气候变化会对水文条件产生明显影响,进而对人类的热力状况和水质产生直接影响。在这项研究中,从2011年至2013年进行了每周调查,以调查气候和水文变化如何影响黑河水库的热力状况和水质。我们的结果表明,洪水季节的水文变化既可以增加氧气浓度,又可以加速溶解氧的消耗。 2011年9月连续发生强降雨事件,导致整个储层混合,导致直到明年的底部溶解氧增加。在2012年的极端降雨事件之后,观察到大量的浊度密度流,导致底部的浊度快速增加(最高3000 NTU)。尽管降雨事件后底部的溶解氧从0增加到9.02 mg / L,但由于暴雨径流带来的悬浮物引起的水需氧量增加,在20天之内变成了缺氧。降雨事件发生后的厌氧期,沉积物中的化合物释放更为严重,底部的总铁,总磷和总锰浓度分别达到1.778、0.102和0.125 mg / L。改进的提水曝气器在2013年暴风雨径流发生后仍保持运转,以避免在厌氧条件下水质恶化,并确保混合期间水质良好。我们的结果表明,必须采取预防和补救措施来改善水质和状况。

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