期刊文献+

Experimental investigation on turbulence modification in a horizontal channel flow at relatively low mass loading 被引量:6

Experimental investigation on turbulence modification in a horizontal channel flow at relatively low mass loading
下载PDF
导出
摘要 Particle-laden flows in a horizontal channel were investigated by means of a two-phase particle image velocimetry (PIV) technique. Experiments were performed at a Reynolds number of 6826 and the flow is seeded with polythene beads of two sizes, 60μm and 110μm. One was slightly smaller than and the other was larger than the Kolmogorov length scale. The particle loadings were relatively low, with mass loading ratio ranging from 5 ×10^-4 to 4 × 10^-2 and volume fractions from 6×10×-7 to 4.8×10^-5, respectively. The results show that the presence of particles can dramatically modify the turbulence even under the lowest mass loading ratio of 5 × 10^-4. The mean flow is attenuated and de- creased with increasing particle size and mass loading. The turbulence intensities are enhanced in all the cases concerned. With the increase of the mass loading, the intensities vary in a complicated manner in the case of small particles, indicating complicated particle-turbulence interactions; whereas they increase monotonously in the case of large particles. The particle velocities and concentrations are also given. The particles lag behind the fluid in the center region but lead in the wall region, and this trend is more prominent for the large particles. The streamwise particle fluctuations are larger than the gas fluctuations for both sizes of particles, however their varying trend with the mass loadings is not so clear. The wallnormal fluctuations increase with increasing mass loadings. They are smaller in the 60μm particle case but larger in the 110μm particle case than those of the gas phase. It seems that the small particles follow the fluid motion to certain extent while the larger particles are more likely dominated by their own inertia. Finally, remarkable non-uniform distributions of particle concentration are observed, especially for the large particles. The inertia of particles is proved to be very important for the turbulence modification and particles behaviors and thus should be considered in horizonta Particle-laden flows in a horizontal channel were investigated by means of a two-phase particle image velocimetry (PIV) technique. Experiments were performed at a Reynolds number of 6826 and the flow is seeded with polythene beads of two sizes, 60μm and 110μm. One was slightly smaller than and the other was larger than the Kolmogorov length scale. The particle loadings were relatively low, with mass loading ratio ranging from 5 ×10^-4 to 4 × 10^-2 and volume fractions from 6×10×-7 to 4.8×10^-5, respectively. The results show that the presence of particles can dramatically modify the turbulence even under the lowest mass loading ratio of 5 × 10^-4. The mean flow is attenuated and de- creased with increasing particle size and mass loading. The turbulence intensities are enhanced in all the cases concerned. With the increase of the mass loading, the intensities vary in a complicated manner in the case of small particles, indicating complicated particle-turbulence interactions; whereas they increase monotonously in the case of large particles. The particle velocities and concentrations are also given. The particles lag behind the fluid in the center region but lead in the wall region, and this trend is more prominent for the large particles. The streamwise particle fluctuations are larger than the gas fluctuations for both sizes of particles, however their varying trend with the mass loadings is not so clear. The wallnormal fluctuations increase with increasing mass loadings. They are smaller in the 60μm particle case but larger in the 110μm particle case than those of the gas phase. It seems that the small particles follow the fluid motion to certain extent while the larger particles are more likely dominated by their own inertia. Finally, remarkable non-uniform distributions of particle concentration are observed, especially for the large particles. The inertia of particles is proved to be very important for the turbulence modification and particles behaviors and thus should be considered in horizonta
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2006年第2期99-108,共10页 力学学报(英文版)
基金 The project supported by the National Natural Science Foundation of China (50276021), and Program for New Century Excellent Talents in University, Ministry of Education (NCET-04-0708) The English text was polished by Yunming Chen.
关键词 Horizontal channel Particle-laden flow Turbulence modification PIV Horizontal channel Particle-laden flow Turbulence modification PIV
  • 相关文献

参考文献4

二级参考文献19

  • 1ZHENG Youqu, FAN Jianren, ZHA Xudong and CEN Kefa(Department of Energy Engineering, Zhejiang University, Hangzhou 310027, China).Direct numerical simulation of particle-fluid flows in turbulent mixing layer[J].Progress in Natural Science:Materials International,2002,12(3):231-235. 被引量:2
  • 2Wen F, Kamalu N, Chung J N, et al. Particle dispersion by vortex structure in plane mixing layers[J]. Trans.ASME: J. Fluids Engng.,1992, 114(4): 657-666. 被引量:1
  • 3Crowe C T,Troutt T R,Chung J N.Numerical models for two-phase turbulent flows[J].Ann.Rev.Fluid Mech.1996,28:11-18. 被引量:1
  • 4Squires K D,Eaton J K.Preferential concentration of particles by turbulence[J].Physics Fluids A,1991,3:1169-1178. 被引量:1
  • 5Pan Y,Banerjee S.Numerical simulation of particle interactions with wall turbulence[J].Phys.Fhuld,1996,10(8):2733-2740. 被引量:1
  • 6Tsuneaki Ishima, Koichi Hishida, Masanobu Maeda. Effect of particle residence time on particle dispersion in a plane mixing layer. J of Fluids Engineering, 1993, 115(12):751~759. 被引量:1
  • 7Yohei Sato, Koichi Hishida, Masanobu Masda. Effect of dispersed phase on modification of turbulent flow in a wall et. J of Fluids Engineering, 1996, 118(6): 307~315. 被引量:1
  • 8Fan QL, Wang XL. Large eddy simulation of a horizontal particle-laden turbulent planar jet. Computational Mechanics, 2001, 27:128~137. 被引量:1
  • 9Ruck B, Makiola B. Particle dispersion in a single-sided backward-facing step flow. Int J Multiphase Flow, 1988,14:787~800. 被引量:1
  • 10Sumer B M, Oguz B. Particle Motions Near the Bottom in Turbulent Flow in an Open Channel. J. Fluid Mech.,1978, 86:109-127 被引量:1

共引文献48

同被引文献45

  • 1栗晶,柳朝晖,王汉封,卢兴,郑楚光.水平槽道气固两相湍流边界层的PIV测量[J].工程热物理学报,2008,29(7):1155-1158. 被引量:4
  • 2Gore R A, Crowe C T. Effect of particle size on modulatingturbulent intensity [ J ].International journal ofMultiphase Flowt 1989,15 (2) : 279-285. 被引量:1
  • 3Tsuji Y, Morikawa Y. LDV measurements of an air-solidtwo-phase flow in a horizontal pipe [J].Journal of FluidMechanics, 1982, 120: 385-409. 被引量:1
  • 4Hetsroni G. Particles-turbulence interaction [J].InternationalJournal of Multiphase Flow,1989, 15 (5) : 735-746. 被引量:1
  • 5Kulick J D, Fessler J R, Eaton J K. Particle response andturbulence modification in fully developed channel flow [J].Journal of Fluid Mechanics , 1994, 277 : 109-134. 被引量:1
  • 6Sato Y, Fukuichi U, Hishida K. Effect of inter-particlespacing on turbulence modulation by lagrangian PIV [J].International Journal of Heat and Fluid Flow , 2000,21(5): 554-561. 被引量:1
  • 7Li Fei, Qi Haiying, You Changfu. Phase doppleranemometry measurements and analysis of turbulencemodulation in dilute gas-solid two-phase shear flows [J].Journal of Fluid Mechanics . 2010, 663: 434-455. 被引量:1
  • 8Kussin J, Sommerfeld M. Experimental studies on particlebehaviour and turbulence modification in horizontal channelflow with different wall roughness [J].Experiments inFluids,2002,33: 143-159. 被引量:1
  • 9Taniere A,Oesterle B,Monnier J C. On the behaviour ofsolid particles in a horizontal boundary layer with turbulenceand saltation effects [J].Experiments in Fluids,1997,23(6): 463-471. 被引量:1
  • 10Kaftori D,Hetsroni G,Banerjee S. The effect of particleson wall turbulence [ J ].International Journal ofMultiphase Flow, 1998, 24 (3): 359-386. 被引量:1

引证文献6

二级引证文献15

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