Theoretical Computation of Boundary Layer Separation Point over an Impeller Vane Pressure Surface in Centrifugal Pump

Swapnil Urankar, Sharad Raikar, N. Bharath, R. Naveen, Sourabh Gupta
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引用次数: 2

Abstract

Centrifugal pumps are being used widely for many applications throughout the world. Lot of work is been carried out on performance improvements, hydraulic vane and volute profiles due to which considerable increase in the efficiency is been observed. It is very difficult to carry out the experimental tests to study the boundary layer behavior and its effect on the performance of the pump. Boundary layer separation plays a very important role in causing the secondary flows in the vane passage which affect the fluid flow path resulting in loss of effective energy transfer to the fluid by vane. Due to the centripetal force acting on the flow due to the curved path of the vane passage, separation of the boundary layer on pressure surface happens well before as compared to the flow separation occurring on the stationary vane surface. At the suction surface the flow is more concentrated hence the flow separation is difficult to occur. In this paper theoretical study of boundary layer behavior on the vane pressure surface is done and separation point is computed to find the occurrence of secondary flows from the separation point. The effect of centripetal force using Dean's equation for velocity distribution over the boundary layer, boundary layer thickness, momentum thickness, displacement thickness and Schlichting's form factor is studied and results are plotted to see the variation of these parameters.
离心泵叶轮叶片压力面边界层分离点的理论计算
离心泵在世界范围内得到了广泛的应用。在性能改进方面进行了大量的工作,液压叶片和蜗壳轮廓由于效率的显著提高而被观察到。通过实验测试来研究边界层行为及其对泵性能的影响是非常困难的。边界层分离在叶片通道内产生二次流,影响流体的流动路径,导致叶片向流体传递的有效能量损失。由于叶片通道的弯曲路径对流动产生向心力作用,压力面上的边界层分离比静止叶片面上的流动分离发生得早。在吸力面,气流较集中,不易发生分离。本文对叶片压力面上的边界层行为进行了理论研究,并对分离点进行了计算,找出了从分离点开始的二次流的发生情况。利用Dean方程研究了向心力对边界层速度分布、边界层厚度、动量厚度、位移厚度和Schlichting形状因子的影响,并绘制了这些参数的变化规律。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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