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Multi-phase transformation model of water quality in the sluice-controlled river reaches of Shayinghe River in China

机译:中国索宁河区水质水质的多相变换模型

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摘要

AbstractTo better understand the complex transformation mechanisms of pollutants in different phases in sluice-controlled river reaches (SCRRs), a multi-phase transformation model of water quality is proposed. This model mainly describes the interactions of the water body, suspended matter, deposited sediments, and organisms. Mathematical expressions were first derived to describe the mass transportation processes in different phases of the river system. The multi-phase transformation model in SCRRs was then established with defined physical mechanisms. Monitored data from the operation of Huaidian sluice were used to identify and validate the parameters of the transformation model and to simulate the spatial and temporal changes of pollutants in different phases. Four findings were made from the results. Firstly, the concentration values of pollutants in each phase in the upper and lower river reaches of the sluice are affected by flow, mode of sluice operation, and algal growth and enrichment. Secondly, the reaction processes in the upper and lower river reaches of the sluice indicate different dominant mechanisms according to the change in sluice operation. Thirdly, sluice operation leads to stronger exchanges between the water body and external materials because of the increased water disturbance. Fourthly, in the early period of the experiment, changes in the alga concentrations were mainly affected by water movement. In the later period, changes in the alga concentrations were mainly affected by the obstruction of the sluice in the upstream section, while these were affected by flow velocity, flow volume, and changes in nutrient concentration in the downstream section.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>更好地了解污染物的复杂变换机制提出了一种淋浴河流达到(SCRR),提出了一种多相变换模型的水质。该模型主要描述水体,悬浮物,沉积物和生物的相互作用。首先衍生数学表达,以描述河流系统不同阶段的质量运输过程。然后用定义的物理机制建立SCRRS中的多相变换模型。来自华达闸门操作的监测数据用于识别和验证转换模型的参数,并模拟不同阶段的污染物的空间和时间变化。从结果制作了四种结果。首先,水闸上下河达下河到下河到下河到下游的污染物的浓度值受流量,水闸操作模式和藻类生长和富集的影响。其次,根据闸门操作的变化,水闸上下河流达到的反应过程表示不同的显性机制。第三,由于水扰动增加,闸门操作导致水体和外部材料之间的更强的交换。第四,在实验的早期期间,藻类浓度的变化主要受水运动的影响。在后期,藻类浓度的变化主要受到上游部分的阻塞的影响,而这些液体受到流速,流量,流量的影响,以及下游部分中的营养浓度的变化。 < /摘要>]]>

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