期刊文献+

滑移界面位置对叶轮机械内部旋转流场的影响 被引量:7

Effects of Sliding Mesh Interface Position on Swirling Flow Fields in Impeller Machinery
在线阅读 下载PDF
导出
摘要 为研究滑移界面位置对叶轮机械内部流体旋转流场的影响,选择了有定子和无定子二种典型的叶轮机械模型,使滑移界面位于转子和静止部件之间的不同位置,分别对其进行数值模拟,得到了叶轮机械内部旋转流场分布,并与实验结果和其他文献结果进行对比分析.结果表明:滑移界面越靠近转子,转子转动对四周区域流体的影响越小;滑移界面越靠近静止部件,转子转动对四周区域流体的影响越大;滑移界面位置应取在转子和静止部件之间靠近转子的1/8~1/4处. To understand the influence of sliding mesh interface position on swirling flowing fields of impeller machinery,two kinds of typical computational models,namely,with stator and without stator,have been chosen to simulate the situation.The fluid velocity distributions in each impeller machinery model are obtained under different sliding mesh interface positions between rotor and stationary components.The results are compared with some experimental data and that of other literatures.It is shown that: the position of sliding mesh interface is closer to the rotor,the rotating of rotor have little effect on the surrounding fluid flow,while if it is closer to the stationary parts,the rotating of rotor have greater effect on the surrounding fluid flow.It suggests that the position of sliding mesh interface should be 1/8~1/4 close to the rotor of the interval between the rotor and stationary parts.
出处 《北京理工大学学报》 EI CAS CSCD 北大核心 2012年第9期890-894,共5页 Transactions of Beijing Institute of Technology
基金 国家自然科学基金资助项目(11002063 50830003) 云南省自然科学基金资助项目(2008GA027 2009ZC035M)
关键词 叶轮机械 旋转流场 滑移网格 滑移界面位置 计算流体动力学 impeller machinery swirling flowing field sliding mesh interface position for sliding mesh computational fluid dynamics
  • 相关文献

参考文献11

  • 1Dersken J J. Numerical simulation of solids suspensionin a stirred tank[J]. AIChE Journal, 2003,49 (11) 2700 - 2714.
  • 2Dersken J J, Doelman M S, Van den Akker H E A. Three-dimensional LDA measurements in the impeller region of a turbulently stirred tank[J].Experiments in Fluids, 1999,27(6) :522 - 532.
  • 3Hartmann H, Dersken J J, Van der Akker H E A. Macroinstability uncovered in a Ruston turbine stirred tank by means of LES[J]. AIChE Journal, 2004,50: 2383 - 2393.
  • 4Tyagi M, Acharya S. Large eddy simulation of turbulent flows in complex and moving rigid geometries using the immersed boundary method[J].International Journal for Numerical Methods in Fluids, 2005, 48: 691 - 722.
  • 5Tyagi M, Roy S, Harvey IIIA D, et al. Simulation oflaminar and turbulent impeller stirred tanks using immersed boundary method and large eddy simulation technique in multi-block curvilinea geometries[J]. Chemical Engineering Science, 2007, 62 ( 5 ) :1351 - 1363.
  • 6Verzicco R, Iaccarino G, Fatica M, et al. Flow in an impeller stirred tank using an immersed boundary technique [J].IChE Journal, 2004, 50 (6) - 1109 - 1118.
  • 7Moin P. Advances in large eddy simulation methodology for complex flows[J]. International Journal of Heat and Fluid Flow, 2002,23(5) :710 - 720.
  • 8Shyy W, Thakur S S. Computational techniques forcomplex transport phenomena [ M]. New York: Cambridge University Press, 1997.
  • 9Chen S, Doolen G D. Lattice Boltzmann method for fluid flows[J].Annu Rev Fluid Meeh, 1998, 30: 329 -364.
  • 10Dong L, Johansen S T, Engh T A. Flow induced by an impeller in an unbaffled tank-I Experimental[J]. Chemical Engineering Science, 1994,49 (4) ; 549 - 560.

同被引文献47

引证文献7

二级引证文献33

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部