首页> 外文会议>ASME/JSME/KSME Joint Fluids Engineering Conference >INFLUENCING THE PART LOAD RECIRCULATION OF A CENTRIFUGAL PUMP AND AVOIDING AN INSTABILITY OF THE PERFORMANCE CURVE THEREBY
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INFLUENCING THE PART LOAD RECIRCULATION OF A CENTRIFUGAL PUMP AND AVOIDING AN INSTABILITY OF THE PERFORMANCE CURVE THEREBY

机译:影响离心泵的分载换向并避免性能曲线的不稳定性

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Centrifugal pumps of low specific speed display an inherent tendency to generate an unstable pump performance curve. These curves are characterized by a head dropping at low flow rates that limits the operational range. Hence, for example centrifugal pumps with such performance curves are not suitable for a usage in firefighting applications or parallel operation. However, there are a few actions that influence positively the stability of the performance curve. One is adding slots at the rear shroud, e.g. on the pressure side or the suction side of the blade. Slots at the pressure side of the blade stabilize the characteristic curve by increasing the head, while suction-side slots stabilize the characteristic curve by dropping it down. The part load flow pattern of a centrifugal pump includes two recirculation zones. The first is located at the inlet of the impeller and caused by the blade suction geometry. The second recirculation zone forms at the outlet of the impeller. It is known that the recirculation zone at the pressure side of a radial impeller has various positions, sizes and structures depending on initial conditions. This paper deals with the assumption that influencing the pressure side recirculation zone leads to a stable pump performance curve. Therefore the structure of the recirculation zone at the impeller outlet is being investigated and analyzed whereas geometrical changes on a centrifugal pump impeller are performed. The tests contain an experimental setup and compare the results to numerical simulations. Subject of the experimental investigations is a centrifugal pump with a specific speed of 33 min~(-1), a flow rate of 650 m~3/h and head of 47 m for the Nominal Point. Measurements are performed for analyzing the time resolved pressure fluctuations and visualizing the flow structures in the volute casing by using pressure transducers and particle image velocimetry (PIV). These data show the changing pressure and velocity field and enable an analyzing of the part load recirculation. Furthermore, the measured operational points and the time resolved pressure data are compared to numerical simulations that are carried out by Computational Fluid Dynamics (hereafter: CFD). The flow pattern gained by CFD allows analyzing the phenomena of the pressure side recirculation in detail, also in areas where the access with measuring instruments is limited. Within the present study different geometrical parameters are subsequently changed on the original impeller design. This concerns, for example, the earlier named slots in the rear shroud both on suction and pressure side of the blade. Results show an influence of these subsequent design methods on the performance curve as well as on the efficiency of the centrifugal pump. Additionally, the time resolved pressure data are used for a validation of the CFD simulations and both results show a significant influence of the flow structure at the impeller outlet on the performance curve. Therefore, it can be shown that the recirculation zone of the impeller is affected by these actions.
机译:低比转速的离心泵显示出固有的趋势,即会产生不稳定的泵性能曲线。这些曲线的特点是压头在低流量时下降,从而限制了操作范围。因此,例如具有这种性能曲线的离心泵不适用于消防应用或并行操作。但是,有一些动作会对性能曲线的稳定性产生积极影响。一种是在后罩上增加插槽,例如在叶片的压力侧或吸力侧。叶片压力侧的槽口通过增加压头来稳定特性曲线,而吸力侧槽口则通过将其降低来稳定特性曲线。离心泵的部分负荷流型包括两个回流区。第一个位于叶轮的入口,由叶片吸力几何形状引起。第二再循环区域在叶轮的出口处形成。已知在径向叶轮的压力侧的再循环区具有取决于初始条件的各种位置,大小和结构。本文处理的假设是,影响压力侧再循环区会导致稳定的泵性能曲线。因此,正在研究和分析叶轮出口处的再循环区的结构,同时对离心泵叶轮进行几何变化。测试包含实验设置,并将结果与​​数值模拟进行比较。实验研究的对象是转速为33 min〜(-1),流速为650 m〜3 / h,标称扬程为47 m的离心泵。通过使用压力传感器和粒子图像测速仪(PIV)进行测量,以分析时间分辨的压力波动并可视化蜗壳中的流动结构。这些数据显示了不断变化的压力和速度场,并可以分析部分负荷的再循环情况。此外,将测得的工作点和时间分辨的压力数据与计算流体力学(以下称为CFD)进行的数值模拟进行比较。通过CFD获得的流动模式可以详细分析压力侧再循环的现象,也可以在使用测量仪器的地方受到限制的区域进行分析。在本研究中,随后在原始叶轮设计上更改了不同的几何参数。例如,这涉及叶片的吸力侧和压力侧的后罩中较早命名的插槽。结果显示了这些后续设计方法对性能曲线以及离心泵效率的影响。此外,时间分辨的压力数据用于CFD模拟的验证,并且两个结果都显示了叶轮出口处的流动结构对性能曲线的重大影响。因此,可以证明叶轮的再循环区域受到这些作用的影响。

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