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Experimental Investigation on the Effect of Sluice Gate Distance on the Flow Structure and Amount of Sediment Entry to the Lateral Intake in Diversion Dam

机译:水闸闸门距离对转移坝横向摄入量流动结构的影响及沉积物

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A set of laboratory experiments has been carried out involving a layout that is common in irrigation diversion works. The layout involves a lateral intake channel with diversion angle 110° and diversion dam which are positioned to allow the flow to be controlled and managed. Based on experimental measurements and observations the effect of sluice gate distance from downstream corner of the intake entrance on the hydrodynamic behavior of diverging flow and a-mount of sediment entering the intake was investigated. The velocity profiles, both upstream of the intake in the main channel, in front of the intake in the sluiceway and a cross the intake entrance and amount of sediment entering into the intake were measured under various discharge combinations of the intake and sluice gate. Experimental observation and analysis of the velocity profile along the intake entrance showed that the structure of the diverging flow into the intake was a function of the sluice gate discharge. Comparison of the result showed that as the sluice gate distance from upstream corner of the intake increased, maximum return velocity increased. Analysis of the sedimentary measurements data showed the amount of sediment entering the intake increased with increasing intake discharge. Comparison of the results showed that with increase relative intake discharge (Dr) from 0. 3 to 0. 6, amount of sediment entry into the intake increase 3 timed approximately. In addition, an increase in the sluice gate discharge caused an increase of sediment entry to the intake under the same intake discharge Comparison of the sedimentary measurements data under different sluice gate discharges showed that an increase the sluice gate discharge from closed gate condition to relative sluice gate discharge (Sr) 0. 18, amount of sediment entry into the intake increase 59. 81 percent approximately. Comparison of sedimentary result showed that amount of sediment entering into the intake increase 13. 8 percent with increase of the sluice gate distance from the intake entrance.
机译:已经进行了一套实验室实验,涉及在灌溉转移工作中常见的布局。布局涉及具有引流角110°的横向进气通道和定位以允许控制和管理流动的转移坝。研究了基于实验测量和观察,从进入进入摄入进入进入摄入的分发散流和沉积物的水动力行为的水动力行为的下游角的影响。在Sluiceway的进气中的进气中的进气中的进气中的进气中的速度曲线和进入摄入进入摄入的沉积物的进气中的进气中的进气中的进气量的上游。沿摄入入口的速度分布的实验观察和分析表明,发散流入摄入的辐射流是闸门栅极放电的函数。结果的比较显示,随着从进气的上游角的闸门距离增加,最大返回速度增加。分析沉积测量数据显示进入摄入量的沉积物量随着进气排出而增加。结果的比较表明,随着0. 3至0.6的相对进气排出(DR)增加,沉积物进入的量大约增加3个定时。另外,在不同的闸门排出下的沉积测量数据的相同进气放电比较下,闸门栅极放电的增加导致沉积物进入的进气量增加显示,在不同的闸门放电下,从封闭式栅极条件增加到相对闸门的闸门栅极放电增加栅极放电(SR)0. 18,沉积物进入进气量增加59.81%左右。沉积效果的比较显示进入进气的沉积物量增加了13.8%,随着从进气入口的增加而增加。

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