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    Vortex Generation in Pulsatile Flow Through Arterial Bifurcation Models Including the Human Carotid Artery

    Source: Journal of Biomechanical Engineering:;1988:;volume( 110 ):;issue: 003::page 166
    Author:
    Takayoshi Fukushima
    ,
    Noriyuki Sakata
    ,
    Takehiko Azuma
    ,
    Tatsuji Homma
    ,
    Kiyohito Harakawa
    DOI: 10.1115/1.3108426
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Visualization experiments were performed to elucidate the complicated flow pattern in pulsatile flow through arterial bifurcations. Human common carotid arteries, which were made transparent, and glass-models simulating Y- and T-shaped bifurcations were used. Pulsatile flow with wave forms similar to those of arterial flow was generated with a piston pump, elastic tube, airchamber, and valves controlling the outflow resistance. Helically recirculating flow with a pattern similar to that of the horseshoe vortex produced around wall-based protuberances in circular tubes was observed in pulsatile flow through all the bifurcations used in the present study. This flow type, which we shall refer to as the horseshoe vortex, has also been demonstrated to occur at the human common carotid bifurcation in steady flow with Reynolds numbers above 100. Time-varying flows also produced the horseshoe vortex mostly during the decelerating phase. Fluid particles of dye solution approaching the bifurcation apex diverged, divided into two directions perpendicularly, and then showed helical motion representing the horseshoe vortex formation. While this helical flow was produced, the stagnation points appeared on the wall upstream of the apex. Their position was dependent upon the flow distribution ratio between the branches in the individual arteries. The region affected by the horseshoe vortex was smaller during pulsatile flow than during steady flow. Lowering the Reynolds number together with the Womersley number weakened the intensity of helical flow. A separation bubble, resulting from the divergence or wall roughness, was observed at the outer or inner wall of the branch vessels and made the flow more complicated.
    keyword(s): Vortices , Bifurcation , Pulsatile flow , Carotid arteries , Flow (Dynamics) , Reynolds number , Electrical resistance , Surface roughness , Waves , Bubbles , Pumps , Valves , Visualization , Separation (Technology) , Fluids , Glass , Particulate matter , Motion , Transparency , Vessels , Pistons AND Outflow ,
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      Vortex Generation in Pulsatile Flow Through Arterial Bifurcation Models Including the Human Carotid Artery

    URI
    https://yetl.yabesh.ir/yetl1/handle/yetl/103648
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    • Journal of Biomechanical Engineering

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    contributor authorTakayoshi Fukushima
    contributor authorNoriyuki Sakata
    contributor authorTakehiko Azuma
    contributor authorTatsuji Homma
    contributor authorKiyohito Harakawa
    date accessioned2017-05-08T23:26:44Z
    date available2017-05-08T23:26:44Z
    date copyrightAugust, 1988
    date issued1988
    identifier issn0148-0731
    identifier otherJBENDY-25838#166_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/103648
    description abstractVisualization experiments were performed to elucidate the complicated flow pattern in pulsatile flow through arterial bifurcations. Human common carotid arteries, which were made transparent, and glass-models simulating Y- and T-shaped bifurcations were used. Pulsatile flow with wave forms similar to those of arterial flow was generated with a piston pump, elastic tube, airchamber, and valves controlling the outflow resistance. Helically recirculating flow with a pattern similar to that of the horseshoe vortex produced around wall-based protuberances in circular tubes was observed in pulsatile flow through all the bifurcations used in the present study. This flow type, which we shall refer to as the horseshoe vortex, has also been demonstrated to occur at the human common carotid bifurcation in steady flow with Reynolds numbers above 100. Time-varying flows also produced the horseshoe vortex mostly during the decelerating phase. Fluid particles of dye solution approaching the bifurcation apex diverged, divided into two directions perpendicularly, and then showed helical motion representing the horseshoe vortex formation. While this helical flow was produced, the stagnation points appeared on the wall upstream of the apex. Their position was dependent upon the flow distribution ratio between the branches in the individual arteries. The region affected by the horseshoe vortex was smaller during pulsatile flow than during steady flow. Lowering the Reynolds number together with the Womersley number weakened the intensity of helical flow. A separation bubble, resulting from the divergence or wall roughness, was observed at the outer or inner wall of the branch vessels and made the flow more complicated.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleVortex Generation in Pulsatile Flow Through Arterial Bifurcation Models Including the Human Carotid Artery
    typeJournal Paper
    journal volume110
    journal issue3
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.3108426
    journal fristpage166
    journal lastpage171
    identifier eissn1528-8951
    keywordsVortices
    keywordsBifurcation
    keywordsPulsatile flow
    keywordsCarotid arteries
    keywordsFlow (Dynamics)
    keywordsReynolds number
    keywordsElectrical resistance
    keywordsSurface roughness
    keywordsWaves
    keywordsBubbles
    keywordsPumps
    keywordsValves
    keywordsVisualization
    keywordsSeparation (Technology)
    keywordsFluids
    keywordsGlass
    keywordsParticulate matter
    keywordsMotion
    keywordsTransparency
    keywordsVessels
    keywordsPistons AND Outflow
    treeJournal of Biomechanical Engineering:;1988:;volume( 110 ):;issue: 003
    contenttypeFulltext
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