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Study on Flow Characteristics in Volute of Centrifugal Pump Based on Dynamic Mode Decomposition

机译:基于动态模式分解的离心泵蜗壳内流动特性研究

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To investigate the unsteady flow characteristics and their influence mechanism in the volute of centrifugal pump, the Reynolds time-averaged N-S equation, RNG k-epsilon turbulence model, and structured grid technique are used to numerically analyze the transient flow-field characteristics inside the centrifugal pump volute. Based on the quantified parameters of flow field in the volute of centrifugal pump, the velocity mode contours and oscillation characteristics of the mid-span section of the volute of centrifugal pump are obtained by dynamic mode decomposition (DMD) for the nominal and low flow-rate condition. The research shows that the first-order average flow mode extracted by DMD is the dominant flow structure in the flow field of the volute. The second-order and third-order modes are the most important oscillation modes causing unsteady flow in the volute, and the characteristic frequency of the two modes is consistent with the blade passing frequency and the 2x blade passing frequency obtained by the fast Fourier transform (FFT). By reconstructing the internal flow field of the volute with the blade passing frequency for the nominal flow-rate condition, the periodic variation of the unsteady flow structure in the volute under this frequency is visually reproduced, which provides some ideas for the study of the unsteady structure in the internal flow field of centrifugal pumps.
机译:为了研究离心泵蜗壳中的非定常流动特性及其影响机理,采用雷诺时均NS方程,RNGk-ε湍流模型和结构化网格技术对离心机内部的瞬态流场特性进行了数值分析。泵蜗壳。根据离心泵蜗壳中流场的量化参数,通过动态模式分解(DMD)获得标称流量和低流量的离心泵蜗壳中段截面的速度模式轮廓和振动特性。率条件。研究表明,DMD提取的一阶平均流动模式是蜗壳流场中的主导流动结构。二阶和三阶模态是导致蜗壳中不稳定流动的最重要的振荡模态,两种模态的特征频率与快速傅里叶变换获得的叶片通过频率和2x叶片通过频率一致( FFT)。通过在标称流速条件下以叶片通过频率重建蜗壳的内部流场,直观地再现了蜗壳中非稳态流动结构在该频率下的周期性变化,为研究非稳态提供了一些思路。离心泵内部流场中的结构。

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