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ENHANCING THE PERFORMANCE OF CENTRIFUGAL PUMP BY ADDING CYLINDRICAL DISKS AT INLET SUCTION

机译:通过在进气口添加圆柱盘来增强离心泵的性能

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Optimizing the high efficiency design of centrifugal pumps requires a detailed understanding of the internal flow. The prediction of the flow inside the pump can be acquired by understanding the rotatory motion and the three-dimensional shape of the impellers, as well as its fundamental unsteady behavior. The flow inside a centrifugal pump is three-dimensional, unsettled and always associated with secondary flow structures. When a centrifugal pump operates under low flow rates, a secondary flow, known as recirculation, starts to begin. Inside this, the separation of flow increases, which creates vortices and cause local pressure to decrease, which induces cavitation. This phenomenon of recirculation will increase the Net Positive Suction Head Required (NPSHR). Improving the suction performance continues to remain a vital and continuous topic in the development and application of centrifugal pumps. In this research, the focal point is to enhance the pump suction performance under low flow rates by modifying the impeller design. This research entails a numerical simulation investigation on the addition of three different designs, each consisting of two cylindrical disks at the impeller inlet suction. It is hypothesized that these modifications will assist suppressing the recirculation phenomenon. The turbulent flow within the centrifugal pump was analyzed by applying the Reynolds-Averaged Navier-Stokes equations and the k-∈ equations for turbulence modelling. The computational domain consists of the inlet, impeller, diffuser and outlet. Analysis of ΔP, torque data and pump efficiency was conducted. The application of CFD solvers to predict pump performance resulted in reduced prices for testing as well as pump development time. The numerical simulation concluded that placing 3-D multi-cylindrical disks at the impeller inlet section improved the centrifugal pump performance under low flow rates. The model design I resulted in a pump efficiency improvement of about 5% at low flow rates by lowering the amount of flow leaking back (re-circulation) through the internal suction.
机译:优化离心泵的高效设计需要对内部流量有详细的了解。可以通过了解叶轮的旋转运动和三维形状以及其基本的非稳态行为来获得对泵内流量的预测。离心泵内部的流动是三维的,不稳定的,并且始终与次级流动结构相关。当离心泵在低流量下运行时,称为再循环的二次流开始开始。在此内部,流动的分离增加,这会产生旋涡并导致局部压力降低,从而引起空化。这种再循环现象将增加所需的净正吸头(NPSHR)。在离心泵的开发和应用中,提高吸力性能仍然是至关重要且持续的课题。在这项研究中,重点是通过修改叶轮设计来提高低流量下的泵吸入性能。这项研究需要对三种不同设计进行数值模拟研究,每种设计均在叶轮入口吸力处包括两个圆柱盘。假设这些修改将有助于抑制再循环现象。通过应用Reynolds平均Navier-Stokes方程和k-ε方程进行湍流建模,分析了离心泵内的湍流。计算域包括入口,叶轮,扩散器和出口。进行了ΔP,扭矩数据和泵效率的分析。 CFD求解器在预测泵性能方面的应用降低了测试价格,并缩短了泵开发时间。数值模拟得出的结论是,在叶轮入口部分放置3-D多圆柱盘可改善低流量下的离心泵性能。模型设计I通过减少通过内部吸力回漏(再循环)的流量,在低流量下将泵效率提高了5%左右。

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