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水力发电学报 ›› 2023, Vol. 42 ›› Issue (9): 11-21.doi: 10.11660/slfdxb.20230902

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泥沙异重流稳定水跃的耗能与掺混实验研究

  

  • 出版日期:2023-09-25 发布日期:2023-09-25

Experimental study on energy consumption and entrainment in stable hydraulic jumps of sediment density current

  • Online:2023-09-25 Published:2023-09-25

摘要: 异重流稳定水跃是非连续异重流中的一种典型流态,反映着由急流过渡到缓流时的运动特征。其运动过程伴随着复杂的耗能和掺混过程,目前的研究还不能很好地解释两者间的对应关系。本文利用水槽实验,观测了泥沙异重流在斜坡与平底交界处的水跃现象,通过推导水头损失公式,分析了水跃耗能和掺混关系。研究发现增加入口含沙量或初始水深,或减小入口流速,均导致水跃强度减弱,共轭水深比值减小,异重流层厚度增加受限。这种实验现象伴随着水跃耗能过程的强弱,入口含沙量或初始水深的增加,或入口流速的减小,均导致水跃前后的水头损失降低,减少了被卷吸的上层清水流量,共轭水深比值进而减小,异重流层密度也有小幅降低。通过对异重流水跃的耗能过程分析,可知耗能减小表明流层间的紊动强度减弱,能有效地降低异重层和上层清水的掺混速率。通过回归分析,发现共轭水深比值与水头损失比?hf/hf1,以及?hf/hf1与掺混系数KQ均呈现出正比例线性关系。本文推导的能量指标是分析异重流水跃过程、揭示异重流掺混机制过程的可行方法。

关键词: 泥沙异重流, 稳定水跃, 共轭水深, 水头损失, 局部掺混

Abstract: Stable hydraulic jump is a typical flow regime in discontinuous density current, which switches the flow from supercritical to subcritical. It usually features energy consumption and entrainment, but previous research lacks a good explanation of the corresponding relationship between the both processes. In this study, the hydraulic jumps of sediment density current are observed in a flume experiment, and their energy consumption and local entrainment are examined by deriving a head loss formula. We find that an increase in sediment concentration or initial water depth at the inlet or a decrease in inlet velocity will lead to the weakening of the jump and a decrease in conjugate depth ratio. And the increase in density current layer thickness will be more limited. Such inlet flow changes will also lead to less head loss, a reduced volume of clear water entrained from the upper layer, and a reduced density of the turbid layer. An analysis of the energy consumption process of the jump reveals that the decrease in energy consumption indicates the weakened turbulence intensity near the interface of the two flow layers, thereby effectively reducing the entrainment from the upper layer. Using regression analysis, we find that either conjugate depth ratio versus head loss ratio ?hf/hf1 or ?hf/hf1 versus entrainment coefficient KQ shows a positive linear relationship. The energy index derived in this paper is a feasible method to analyze the hydraulic jumps of density current and reveal their local entrainment mechanism.

Key words: sediment density current, stable hydraulic jump, conjugate depth, head loss, local entrainment

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