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Numerical study on the internal flow characteristics of an axial-flow pump under stall conditions

机译:失速条件下轴流泵内部流动特性的数值研究

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When an axial-flow pump works in low flow rate conditions, rotating stall phenomena will probably occur, and the pump will enter hydraulic unsteady conditions. The rotating stall can lead to violent vibration, noise, turbulent flow, and a sharp drop in efficiency. This affects the safety and stability of the pump unit. To study the rotating stall flow characteristics of an axial-flow pump, the steady and unsteady internal flow field in a large vertical axial-flow pump was investigated using 3D computational fluid dynamic (CFD) technology. Numerical calculations were carried out using the Reynolds-averaged Navier-Stokes (RANS) solver and Menter's shear stress transport (SST) k-omega turbulence model. Steady flow characteristics including streamline, velocity vector, pressure and turbulent kinetic energy are presented and analyzed. Unsteady flow characteristics are described using post-processing signals for pressure monitoring points in the time and frequency domains. Using Q-criterion, the locations and evolution rules of the core region of the vortex structure in guide vanes under deep stall conditions were investigated. The reliability of the numerical simulation results was verified using the experimental prototype pressure fluctuation test. In this way, typical flow structure and pressure fluctuation characteristics in an axial-flow pump were analyzed, with contrastive analysis in design condition and stall conditions. Finally, the mechanism of low-frequency pressure fluctuation in a pump unit under the stall condition was revealed.
机译:当轴流泵在低流量条件下工作时,可能会发生旋转摊位现象,泵将进入液压不稳定条件。旋转档会导致剧烈的振动,噪音,湍流,效率急剧下降。这会影响泵单元的安全性和稳定性。为了研究轴流泵的旋转失速流动特性,使用3D计算流体动力学(CFD)技术研究了大型垂直轴流泵中的稳态和不稳定的内部流场。使用雷诺平均的Navier-Stokes(RAN)求解器和导师剪切应力传输(SST)K-Omega湍流模型进行数值计算。呈现并分析包括流线,速度矢量,压力和湍流动能的稳定流动特性。使用用于时间和频域的压力监测点的后处理信号来描述非定常流量特性。使用Q标准,研究了导叶片在深部失速条件下导叶中涡旋结构的核心区域的位置和演化规则。使用实验原型压力波动试验验证了数值模拟结果的可靠性。以这种方式,分析了轴流泵中的典型流动结构和压力波动特性,具有对比分析设计条件和失速条件。最后,揭示了在失速条件下泵单元中的低频压力波动的机理。

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