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Pressure distribution and cavitation in counter-vortex flow energy dissipators of hydraulic spillways

机译:液压溢洪道逆涡流耗能器中的压力分布和空化

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The article is devoted to the study of cavitation phenomena of counter-vortex flow energy dissipators that can be used in hydraulic spillways. The spillways providing the surface flow transitionn at hydraulic structures are equipped with energy dissipators of the discharged flow. An increase in the effective pressure on the hydropower project leads to an increase in the flow velocities and, hence , to an increase in the loads acting on the structures. One of such a manifestation is cavitation and cavitation erosion associated with it, which can lead to destruction of structures. The objective of the study consists in determining the cavitation characteristics of counter-vortex flow energy dissipators. The study was carried out by modeling using high-head physical models. The counter-vortex method of excess flow energy dissipation based on the work of viscous friction forces allows the flow energy to be dissipated in a very short part of the flow conductor system of the spillway. This feature of the counter-vortex flow energy dissipator imposes special requirements to the study of cavitation phenomena. The carried out studies resulted in obtaining the distribution of pressures lengthwise the flow conductor system of the energy dissipator with spiral swirls. The values of the cavitation coefficient and relative pressure at different points of the device are given. In the conclusions it is noted that the most dangerous part from the viewpoint of cavitation orrurence is the initial section of the flow energy dissipation chamber; cavitation due to flow separation and bubble cavitation occur within the flow and does not affect the structural elements; on a large-scale model working for 500 hours at pressures of up to 70 m cavitation erosion of the walls has not been detectd.
机译:本文专门研究可用于水力溢洪道的逆涡流消能器的气蚀现象。在水工建筑物处提供地表水流过渡的溢洪道配有排出水流的消能器。水力发电项目上有效压力的增加导致流速的增加,因此导致作用在结构上的载荷增加。这种表现之一是气蚀和与此相关的气蚀,这会导致结构破坏。该研究的目的在于确定反涡流消能器的气蚀特性。该研究是通过使用高头物理模型进行建模来进行的。基于粘性摩擦力功的过量流动能量消散的反涡旋方法允许将流动能量消散在溢洪道导流系统的一小部分。反涡流消能器的这一特性对空​​化现象的研究提出了特殊要求。进行的研究导致获得具有螺旋旋流的消能器的导流系统的纵向压力分布。给出了设备不同点的气穴系数和相对压力的值。在结论中指出,从气蚀或湍流的角度来看,最危险的部分是流动能量消散室的初始部分。由于流动分离而产生的空化和气泡空化在流内发生,并且不影响结构元件;在高达70 m的压力下工作500小时的大型模型上,尚未发现壁蚀。

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