COMPUTATIONAL INVESTIGATION OF BACKWARD-FACING STEP FLOW PRECEDING A POROUS MEDIUM

被引:0
|
作者
Krishnamoorthy, C. [1 ]
Ravi, K. C. [1 ]
Yao, S. [1 ]
Chambers, F. W. [1 ]
机构
[1] Burns & McDonnell, Kansas City, MO 64114 USA
来源
IMECE 2009: PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, VOL 9, PTS A-C | 2010年
关键词
MACROSCOPIC TURBULENCE MODEL; DIRECT NUMERICAL-SIMULATION; INCOMPRESSIBLE-FLOW; CHANNEL FLOW; SHEAR-LAYER; INSERT; FLUID; PIV;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Optimal performance of air filters and heat exchangers requires uniform inlet flow, but flow separation produces nonuniformity. The backward-facing step flow has a separation resembling those found in industrial flows. Flow resistance of the devices is a parameter which alters upstream pressure gradients, thereby affecting separation and device performance. Air filters often are modeled as porous media using an extended Darcy Law. The present work applied Computational Fluid Dynamics (CFD) to examine the changes in the step flow resulting from the resistance of a downstream air filter. Computations were performed for a backward-facing step with a 2:1 expansion ratio for a case without a filter (reattachment at 6 step heights) and for filters located 4.25 and 6.75 step heights downstream. FLUENT commercial CFD software was used and results were compared to many no-filter case results in the literature and our own experimental studies for the step with downstream filters. The simulations were performed for Reynolds numbers based on approach channel mean velocity and hydraulic diameter of 2000, 3750, 6550 and 10000. The different turbulence models available in FLUENT were evaluated and the Realizable k-epsilon model was used for the final computations. Grid independence studies were conducted. The effects of different values of the filter modeling permeability, inertial constant and thickness also were investigated for Re = 10000 with the filter at 4.25 step heights. It was found that the computational results did not compare well to no-filter cases or the experiments with filters at the lower Reynolds numbers. It is believed that the turbulence models were unsuitable for these flows at transitional Reynolds numbers. Good agreement for no-filter results and for the experiments with filters was observed for Re = 10,000. The CFD model seems to capture the physics of the separation better at the higher Reynolds numbers. The CFD velocity profiles at Re = 10,000 with the filters agree with those of the experiments. When the filter is placed at 4.25 step heights, the flow reattaches upstream of the filter with a reduction in recirculation area. When the filter is at 6.75 step heights, the separated flow tends to reattach and the opposite side tends to separate. At Re = 10,000 and the filter at 4.25 step heights, the variations of porous medium permeability, inertial constant and the filter thickness have negligible effects on the recirculation region over the parameter ranges considered.
引用
收藏
页码:195 / 205
页数:11
相关论文
共 50 条
  • [1] Experimental investigation of a cavitating backward-facing step flow
    Maurice, G.
    Djeridi, H.
    Barre, S.
    27TH IAHR SYMPOSIUM ON HYDRAULIC MACHINERY AND SYSTEMS (IAHR 2014), PTS 1-7, 2014, 22
  • [2] EXPERIMENTAL AND THEORETICAL INVESTIGATION OF BACKWARD-FACING STEP FLOW
    ARMALY, BF
    DURST, F
    PEREIRA, JCF
    SCHONUNG, B
    JOURNAL OF FLUID MECHANICS, 1983, 127 (FEB) : 473 - 496
  • [3] Experiments on backward-facing step flows preceding a filter
    Yao, S.
    Krishnamoorthy, C.
    Chambers, F. W.
    FEDSM 2007: PROCEEDINGS OF THE 5TH JOINT ASME/JSME FLUIDS ENGINEERING SUMMER CONFERENCE, VOL 2, PTS A AND B, 2007, : 1179 - 1189
  • [4] INVESTIGATION OF INLET EFFECTS ON BACKWARD-FACING STEP FLOW PREDICTION
    Isman, Mustafa Kemal
    TRANSACTIONS OF THE CANADIAN SOCIETY FOR MECHANICAL ENGINEERING, 2016, 40 (03) : 317 - 329
  • [5] Investigation of the coherent structures in flow behind a backward-facing step
    Hu, Ruyun
    Wang, Liang
    Fu, Song
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2016, 26 (3-4) : 1050 - 1068
  • [6] Numerical investigation of flow over obstacles on a backward-facing step
    Bayraktar, Seyfettin
    JOURNAL OF THE FACULTY OF ENGINEERING AND ARCHITECTURE OF GAZI UNIVERSITY, 2021, 36 (02): : 1145 - 1158
  • [7] EFFECT OF POROUS INSERT ON HEAT TRANSFER IN A BACKWARD-FACING STEP FLOW
    deLemos, Marcelo J. S.
    Galuppo, Wagner C.
    PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE, 2016, VOL 1, 2016,
  • [8] Effect of Contraction on Backward-facing Step Flow
    Zheng, Tiegang
    Sun, Shuangke
    Liu, Haitao
    PROCEEDINGS OF THE 35TH IAHR WORLD CONGRESS, VOLS I AND II, 2013, : 1414 - 1421
  • [9] Numerical investigation of vortical evolution in a backward-facing step expansion flow
    Chiang, TP
    Sheu, TWH
    Fang, CC
    APPLIED MATHEMATICAL MODELLING, 1999, 23 (12) : 915 - 932
  • [10] Study on the features of backward-facing step flow
    Qian, B.
    Zhang, D. B.
    Luo, C. Y.
    WATER RESOURCES AND ENVIRONMENT, 2016, : 29 - 33