Jet-wake flow in the channel of impeller and the effect of surface roughness on it

被引:0
|
作者
Zhao, Binjuan [1 ]
Wang, Yu [1 ]
Chen, Huilong [1 ]
Hou, Duohua [1 ]
Qiu, Jing [1 ]
机构
[1] School of Energy and Power Engineering, Jiangsu University, Zhenjiang
来源
Nongye Jixie Xuebao/Transactions of the Chinese Society for Agricultural Machinery | 2014年 / 45卷 / 09期
关键词
Centrifugal pump; Channel of impeller; Jet-wake flow; Numerical simulation; Roughness;
D O I
10.6041/j.issn.1000-1298.2014.09.023
中图分类号
学科分类号
摘要
For analyzing the flow pattern and reducing the hydraulic loss, the jet-wake flow in the channel of impeller and how it is influenced by the surface roughness have been studied by coupling computational fluid mechanics and the sand-grain roughness method. The results of experiment and simulation were compared to insure the RNG k-ε model could reflect the variation of the inner flow. The results indicate that the jet-wake flow was obvious in the channel of impeller and the jet flow mainly appeared nearby the rear shroud of the suction side, while the jet flow appeared in the front shroud at the exit of impeller. The surface roughness of the impeller had a great influence on the relative velocity, and had the opposite influence on the pressure and suction side. The effect of surface roughness on the relative velocity become opposite when the value of roughness was higher than a transitional point. With the increase of the value of surface roughness, the amplitude of the relative velocity at the exit of impeller increased obviously, which was caused by the impeller-volute interaction.
引用
收藏
页码:138 / 143
页数:5
相关论文
共 16 条
  • [1] Li L., Wang Z., Simulation of the influence of wall roughness on the performance of axial-flow pump , Transactions of the CSAE, 20, 1, pp. 132-135, (2004)
  • [2] Zhu H., Yan B., Zhou J., Study on the influence of wall roughness on the hydraulic performance of axial-flow pumps , Journal of Irrigation and Drainage, 25, 1, pp. 85-88, (2006)
  • [3] Zhang L., Chang J., Influence of roughness of runner on the cavitation of pump-turbine in the pump mode , Journal of Hydroelectric Engineering, 27, 2, pp. 125-129, (2008)
  • [4] Huang K., Wan J.W., Chen C.X., Et al., Experiments investigation of the effects of surface roughness on laminar flow in macro tubes , Experimental Thermal and Fluid Science, 45, pp. 243-248, (2013)
  • [5] Krogstad P.A., Antonia R.A., Surface roughness effects in turbulent boundary layers , Experiments in Fluids, 27, 5, pp. 450-460, (1999)
  • [6] Shah M.K., Agelinchaab M., Tachie M.F., Influence of PIV interrogation area on turbulent statistics up to 4th order moments in smooth and roughness wall turbulent flows , Experimental Thermal and Fluid Science, 32, 3, pp. 725-747, (2008)
  • [7] de Marchis M., Napoli E., Effects of irregular two-dimensional and three-dimension surface roughness in turbulent channel flows , International Journal of Heat and Fluid Flow, 36, pp. 7-17, (2012)
  • [8] Dierich F., Nikrityuk P.A., A numerical study of the impact of surface roughness on heat and fluid flow past a cylindrical particle , International Journal of Thermal Sciences, 65, pp. 92-103, (2013)
  • [9] Rasi M.F., Soltani M.R., Effect of leading-edge roughness on boundary layer transition of an oscillating airfoil, Scientia Iranica, 20, 3, pp. 508-515, (2013)
  • [10] Soltani M.R., Birjandi A.H., Seddighi M.M., Effect of surface contamination on the performance of a section of a wind turbine blade , Scientia Iranica, 18, 3, pp. 349-357, (2011)