Predicting and Improving Hydraulic Performance of Pumping Suction Intakes By Computational Fluid Dynamics (CFD)

Ashraf H. M. Ghanem, Gamal H. Elsaeed, M. A. Rabbo, M. Abuzeid, E. F. Elzahry
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Abstract

The disturbance in velocity distribution generates hydraulic instability of pumping units, which leads to failure, damage and other operation and maintenance difficulties. The objective of this research is to predict and enhance the hydraulic problems in the sump intake of FARASKOUR drainage pumping station on faraskour drain Damietta governorate. the first and fifth units of the operating, water were not analyzed, study of the hydraulic problems of the suction basin of the new pump station due t o the sharp rotation in the suction guide from the sharp rotation to the quay station and the continuous discontinuation of the first and fifth units due to the lack of regular water entering the unit. And recommends the suitable modifications to eliminate the operations and maintenance costs. A numerical simulation was done to investigate the hydraulic stability of the station. There are Four cases were done. The first case, when all units “five units” operate at the same time, the second case when three units operate “1, 2 and 3”, the third case when other three units “3, 4 and 5” operate, and the last case when three units “1, 3 and 5” operate. The ANSYS R18.1 flow simulation software, Computational Fluid Dynamics (CFD) is used to simulate the flow conditions at different working pumping units and different water levels to predict the hydraulic problem at the suction side. The results indicate that the problem of flow is due to the sharp bending of the suction channel at the entrance of the units to the station, leading to two negative phenomena, the first one not to distribute well to the incoming lines of the units, and the second is the appearance of places of relatively low speeds. The internal bending of the stream just before the entry of units directly to this area affects negatively the work of units (4, 5) and the problem becomes more specific with the formation of depositions. In general, the results indicate that with five pumping units’ scenarios in operation appear Dead zones in the inner curvature of the intake. From simulation results, the geometry of the intake is proper for running four parallel flow pumps with the designed flow rate and reduces the distance from both sides of the canal (make Protection basin).
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基于计算流体力学(CFD)的抽吸进气道水力性能预测与改进
速度分布的扰动会引起抽油机的水力失稳,从而导致故障、损坏等运维困难。本研究的目的是预测和改善FARASKOUR排水泵站在Damietta省FARASKOUR排水沟的水工问题。对1、5号机组的运行情况、进水情况进行了分析,研究了新泵站因吸入导向器急转而引起的新泵站吸水盆水力问题,以及1、5号机组因缺乏正常进水进入机组而不断停产的问题。并建议适当的修改,以减少操作和维护成本。通过数值模拟研究了该电站的水力稳定性。一共做了4例。第一种情况是所有机组“5台”同时运行,第二种情况是三个机组“1、2、3”同时运行,第三种情况是其他三个机组“3、4、5”同时运行,最后一种情况是三个机组“1、3、5”同时运行。利用ANSYS R18.1流动仿真软件CFD (Computational Fluid Dynamics)对不同工作抽油机和不同水位下的流动情况进行仿真,预测吸力侧的水力问题。结果表明,流动问题是由于机组进站入口处的吸力通道急剧弯曲,导致两种负面现象,一是机组进站线分布不均匀,二是出现相对低速的地方。在单元直接进入该区域之前,水流的内部弯曲对单元(4,5)的功产生了负面影响,随着沉积物的形成,问题变得更加具体。结果表明,在5种工况下,进水口内曲率均存在死区。从仿真结果来看,进水口的几何形状适合以设计流量运行4台并联泵,并且减少了与运河两侧的距离(形成保护池)。
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