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Hydraulic Jump and Energy Dissipation with Sluice Gate

机译:水闸的水力跳跃和能量消散

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Movable weirs have been developed to address the weaknesses of conventional fixed weirs. However, the structures for riverbed protection downstream of movable weirs are designed using the criteria of fixed weirs in most cases, and these applications cause problems, such as scour and deformation of structures, due to misunderstanding the difference between different types of structures. In this study, a hydraulic experiment was conducted to examine weir type-specific hydraulic phenomena, compare hydraulic jumps and downstream flow characteristics according to different weir types, and analyze hydraulic characteristics, such as changes in water levels, velocities and energy. Additionally, to control the flow generated by a sluice gate, energy dissipators were examined herein for their effectiveness in relation to different installation locations and heights. As a result, it was found that although sluice gates generated hydraulic jumps similar to those of fixed weirs, their downstream supercritical flow increased to eventually elongate the overall hydraulic jumps. In energy dissipator installation, installation heights were found to be sensitive to energy dissipation. The most effective energy dissipator height was 10% of the downstream free surface water depth in this experiment. Based on these findings, it seems desirable to use energy dissipators to reduce energy, as such dissipators were found to be effective in reducing hydraulic jumps and protecting the riverbed under sluice gates.
机译:已经开发了可移动堰,以解决常规固定堰的缺点。然而,在大多数情况下,活动堰下游的河床保护结构是按固定堰的标准设计的,由于误解了不同类型结构之间的差异,这些应用会引起诸如结构冲刷和变形的问题。在这项研究中,进行了一项水力实验,以检查特定于堰类型的水力现象,根据不同的堰类型比较水力跃变和下游流量特性,并分析水力特性,例如水位,速度和能量的变化。另外,为了控制闸门产生的流量,本文检查了消能器相对于不同安装位置和高度的有效性。结果发现,尽管闸门产生的水力跃变类似于固定堰,但其下游超临界流量增加,最终拉长了整体水力跃变。在消能器安装中,发现安装高度对消能敏感。在此实验中,最有效的耗能器高度为下游自由表面水深的10%。基于这些发现,使用消能器来减少能量似乎是可取的,因为发现这种消散器可有效减少水力跳跃并保护闸门下的河床。

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