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Influence of circulating-flow's geometric characters on energy transition of a vortex pump

机译:循环流的几何特征对涡流泵能量转换的影响

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Purpose Having read previous literature about vortex pump, we noticed that mechanisms of circulating flow and its relationship with energy transition remain unclear yet. However, this mechanism, which should be clarified, significantly influences the pump's efficiency. To comply with the aim of investigating it, the 150WX-200-20 type pump is selected as study object in our present work.Design/methodology/approach Numerical simulation is conducted to formulate interactions between flow rate and geometric parameters of circulating flow with certain types of blade while experiments on inner flow are served as a witness to provide experimental confirmation of numerical results. Based on these, we coupled some parameters with the pump's external performance to study their internal connections.Findings It is concluded that separatrix between circulating flow and other turbulent forms is not that clear under low flow rate. With flow increases, hydraulic losses coming of it will be dominant within the front chamber. Besides, we analogized circulating flow to vortices so as to make a quantitative analysis on its progressive evolution with changing flow, and vortices speaking for circulating flow can be divided into two groups. One is called main circulating flow vortex (hereinafter referred to as MCFV), which occurs all the time while subsidiary circulating flow vortices (hereinafter referred to as SCFV) appear in certain conditions. This context discusses the primary phase of our work with intent to follow up further with circulating flow characterized by vortices (hereinafter referred to as CFV). We confirmed that MCFV Vortex 1 (Vor1) directly influences the efficiency while SCFVs only play helping. As the flow goes to the given working condition, fluids in this pump tend to be steady with the size of CFVs getting larger and their shape being regular. Meanwhile, for MCFV Vor2 and Vor4, their geometric parameters are the key factors for efficiency. When CFVs become steady, they absorb other vortices nearby, as they have higher viscosity with the efficiency reaching its maximum.Originality/value The research results explore a new way to measure the circulating flow and help work out the causation of this flow pattern, which may be used to improve the vortex pump's efficiency.
机译:目的在阅读了有关旋涡泵的先前文献之后,我们注意到循环流的机理及其与能量转换的关系仍然不清楚。但是,应澄清的这种机制会显着影响泵的效率。为了符合研究的目的,本研究选择了150WX-200-20型泵作为研究对象。设计/方法/方法进行了数值模拟,得出了一定流量下循环流量与几何参数之间的相互作用。内流实验作为叶片类型的见证,以提供数值结果的实验​​确认。在此基础上,我们将一些参数与泵的外部性能相结合,以研究其内部连接。结果发现,在低流量下,循环流与其他湍流形式之间的分离并不明显。随着流量的增加,前室内的水力损失将占主导地位。此外,我们将循环流模拟为涡流,以便对其随流量变化的渐进演化进行定量分析,而将循环流说成的涡流可分为两组。一种称为主循环流涡流(以下称为MCFV),它始终在特定条件下出现副循环流涡流(以下称为SCFV)时发生。本文讨论了我们工作的主要阶段,目的是进一步研究以涡旋为特征的循环流(以下简称CFV)。我们确认,MCFV Vortex 1(Vor1)直接影响效率,而SCFV仅起到帮助作用。随着流量达到给定的工作条件,该泵中的流体趋于稳定,CFV的尺寸变大并且形状规则。同时,对于MCFV Vor2和Vor4,它们的几何参数是效率的关键因素。当CFV变得稳定时,它们会吸收附近的其他涡流,因为它们的粘度更高,效率达到最大值。原始数据/值研究结果探索了一种新的方法来测量循环流量并找出这种流动方式的原因,可用于提高涡流泵的效率。

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