• DocumentCode
    2528687
  • Title

    A 2-D axisymmetric CFD model of oscillatory flow with separation

  • Author

    Ibrahim, Mounir B. ; Zhang, Zhiguo ; Kembhavi, Sundeep ; Simon, Terrence W. ; Gedeon, David

  • Author_Institution
    Dept. of Mech. Eng., Cleveland State Univ., OH, USA
  • fYear
    2004
  • fDate
    29-31 July 2004
  • Firstpage
    549
  • Lastpage
    555
  • Abstract
    A 2-D axisymmetric computational model was developed to simulate a UMN test rig and encompassing: a piston/cylinder and 90 degree flow turn to a radial flow between two discs. Three cases were studied representing a combination of two disc spacings (54 & 127 mm) and two oscillating frequencies (30 & 70 CPM). The CFD-ACE+ commercial CFD code was utilized for this study. Both laminar and turbulent simulations were attempted. The CFD code was validated by comparing with experimental data for a unidirectional jet impinging on a flat plate. The agreement was good. The laminar and turbulent flow cases mimic closely the flow visualization obtained in the UMN rig. The CFD simulations for the three oscillatory flow cases revealed close similarity of flow features. However, distinct differences were noticed, in both computations and experiments, between small and large disc spacing in the channel. The small channel shows the presence of vortices only in a portion of the cycle. The large channel shows a large vortex throughout the whole cycle. This vortex gets stronger during jetting into the disc space (exhaust stroke) and weaker during suction into the cylinder.
  • Keywords
    channel flow; computational fluid dynamics; flow separation; flow simulation; flow visualisation; fluid oscillations; jets; laminar flow; pistons; turbulence; 2D axisymmetric CFD model; channel flow; commercial CFD code; computational fluid dynamics; exhaust stroke; flat plates; flow separation; flow simulation; flow visualization; laminar flow; laminar simulations; oscillatory flow; piston-cylinders; radial flow; turbulent flow; turbulent simulations; unidirectional jet impinging; Computational fluid dynamics; Computational modeling; Electronic mail; Frequency; Kinetic energy; Mechanical engineering; NASA; Pistons; Stirling engines; Viscosity;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Energy Conversion Engineering Conference, 2002. IECEC '02. 2002 37th Intersociety
  • Print_ISBN
    0-7803-7296-4
  • Type

    conf

  • DOI
    10.1109/IECEC.2002.1392103
  • Filename
    1392103