MODELING LAMINAR FLOW IN CONVERGING-DIVERGING CHANNELS

被引:0
|
作者
Fasogbon, Samson Kolawole [1 ,2 ,3 ]
Ayoade, Adams Babatunde [1 ]
Oyedepo, Sunday Olayinka [4 ]
机构
[1] Univ Ibadan, Dept Mech Engn, Ibadan, Nigeria
[2] Univ Ibadan, Ctr Petr Energy Econ & Law, Ibadan, Nigeria
[3] Lagos State Univ, Dept Mech Engn, Lagos, Nigeria
[4] Covenant Univ, Dept Mech Engn, Km 10,Idiroko Road,PMB 1023, Ota, Nigeria
关键词
net charge; Reynolds numbers; radius ratios; taper angles; frictionalflow resistance; HEAT-TRANSFER; FLUID-FLOW;
D O I
10.1615/InterJFluidMechRes.2023046089
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Original Manuscript Submitted: 9/18/2022; Final Draft Received: 2/10/2023 Converging-diverging channels have been known to have low net charge (flow parameters) due to associated high frictional flow resistance. Thus, there is a need to optimize frictional flow resistance in these channels. To this end, frictional flow resistance was optimized for a laminar, fully formed flow in a linearly varying cross-sectional converging- diverging channel in this study. To achieve this, an empirical frictional flow resistance model was developed using continuity and momentum equations, and this accurately represents a parabolic axial velocity profile in converging- diverging section. The developed model was solved and parametric investigations carried out on geometrical and fluid flow parameters using MATLAB 6.1. The results show that the frictional flow resistance decreases as radius ratios increases, but increases as Reynolds number and taper angle increase. Radius ratios and Reynolds numbers were found to be more significant than taper angles. Results in comparison to available literature showed that the developed frictional flow model is an accurate model as it predicts axial velocity and the flow resistance with a high degree of precision. The study concludes that, for frictional flow resistance to be kept at barest minimum in a converging diverging channel, radius ratio must be maintained at its highest value and Reynolds number at its lowest possible value.
引用
收藏
页码:17 / 29
页数:13
相关论文
共 50 条
  • [41] Converging-Diverging Flow in a Novel Extruder and its Application in Film Blowing
    Yin, X. C.
    Tang, B.
    Yu, Z. W.
    Yang, Z. T.
    He, G. J.
    INTERNATIONAL POLYMER PROCESSING, 2014, 29 (05) : 552 - 557
  • [42] Cavitation flow instability of subcooled liquid nitrogen in converging-diverging nozzles
    Ohira, Katsuhide
    Nakayama, Tadashi
    Nagai, Takayoshi
    CRYOGENICS, 2012, 52 (01) : 35 - 44
  • [43] Flow of non-Newtonian fluids in converging-diverging rigid tubes
    Sochi, Taha
    ASIA-PACIFIC JOURNAL OF CHEMICAL ENGINEERING, 2015, 10 (03) : 387 - 399
  • [45] Heat transfer and flow characteristics in a sinusoidally curved converging-diverging channel
    Kurtulmus, Nazim
    Zontul, Harun
    Sahin, Besir
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2020, 148 (148)
  • [46] THE EFFECT OF TEMPERATURE ON WATER CAVITATION PHENOMENA IN CONVERGING-DIVERGING NOZZLE FLOW
    Ahmed, Zayed
    Beck, B. Terry
    Hosni, Mohammad H.
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING, 2017, VOL 2, 2017,
  • [47] Characterization of the cavitating flow in converging-diverging nozzle based on experimental investigations
    Rudolf, Pavel
    Hudec, Martin
    Griger, Milan
    Stefan, David
    EFM13 - EXPERIMENTAL FLUID MECHANICS 2013, 2014, 67
  • [48] DIRECT PRESSURE MEASUREMENT AND FLOW VISUALIZATION OF CAVITATION IN A CONVERGING-DIVERGING NOZZLE
    Gallman, Benjamin
    Beck, B. Terry
    Hosni, Mohammad H.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2019, VOL 7, 2020,
  • [49] Accretion onto compact objects viewed as a flow in converging-diverging ducts
    Chakrabarti, K.
    Majumdar, M. M.
    Chakrabarti, Sandip K.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2008, 17 (05): : 799 - 814
  • [50] NONIDEAL ISENTROPIC GAS-FLOW THROUGH CONVERGING-DIVERGING NOZZLES
    LEUNG, JC
    EPSTEIN, M
    EMANUEL, G
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1991, 113 (02): : 311 - 312