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    Sequential Structural and Fluid Dynamic Numerical Simulations of a Stented Bifurcated Coronary Artery

    Source: Journal of Biomechanical Engineering:;2011:;volume( 133 ):;issue: 012::page 121010
    Author:
    Dario Gastaldi
    ,
    Stefano Morlacchi
    ,
    Claudio Chiastra
    ,
    Giancarlo Pennati
    ,
    Gabriele Dubini
    ,
    Francesco Migliavacca
    DOI: 10.1115/1.4005476
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Despite their success, stenting procedures are still associated to some clinical problems like sub-acute thrombosis and in-stent restenosis. Several clinical studies associate these phenomena to a combination of both structural and hemodynamic alterations caused by stent implantation. Recently, numerical models have been widely used in the literature to investigate stenting procedures but always from either a purely structural or fluid dynamic point of view. The aim of this work is the implementation of sequential structural and fluid dynamic numerical models to provide a better understanding of stenting procedures in coronary bifurcations. In particular, the realistic geometrical configurations obtained with structural simulations were used to create the fluid domains employed within transient fluid dynamic analyses. This sequential approach was applied to investigate the final kissing balloon (FKB) inflation during the provisional side branch technique. Mechanical stresses in the arterial wall and the stent as well as wall shear stresses along the arterial wall were examined before and after the FKB deployment. FKB provoked average mechanical stresses in the arterial wall almost 2.5 times higher with respect to those induced by inflation of the stent in the main branch only. Results also enlightened FKB benefits in terms of improved local blood flow pattern for the side branch access. As a drawback, the FKB generates a larger region of low wall shear stress. In particular, after FKB the percentage of area characterized by wall shear stresses lower than 0.5 Pa was 79.0%, while before the FKB it was 62.3%. For these reasons, a new tapered balloon dedicated to bifurcations was proposed. The inclusion of the modified balloon has reduced the mechanical stresses in the proximal arterial vessel to 40% and the low wall shear stress coverage area to 71.3%. In conclusion, these results show the relevance of the adopted sequential approach to study the wall mechanics and the hemodynamics created by stent deployment.
    keyword(s): Fluids , Computer simulation , Stress , Engineering simulation , Bifurcation , stents , Coronary arteries AND Blood flow ,
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      Sequential Structural and Fluid Dynamic Numerical Simulations of a Stented Bifurcated Coronary Artery

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    http://yetl.yabesh.ir/yetl1/handle/yetl/145342
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    • Journal of Biomechanical Engineering

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    contributor authorDario Gastaldi
    contributor authorStefano Morlacchi
    contributor authorClaudio Chiastra
    contributor authorGiancarlo Pennati
    contributor authorGabriele Dubini
    contributor authorFrancesco Migliavacca
    date accessioned2017-05-09T00:42:17Z
    date available2017-05-09T00:42:17Z
    date copyrightDecember, 2011
    date issued2011
    identifier issn0148-0731
    identifier otherJBENDY-27235#121010_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/145342
    description abstractDespite their success, stenting procedures are still associated to some clinical problems like sub-acute thrombosis and in-stent restenosis. Several clinical studies associate these phenomena to a combination of both structural and hemodynamic alterations caused by stent implantation. Recently, numerical models have been widely used in the literature to investigate stenting procedures but always from either a purely structural or fluid dynamic point of view. The aim of this work is the implementation of sequential structural and fluid dynamic numerical models to provide a better understanding of stenting procedures in coronary bifurcations. In particular, the realistic geometrical configurations obtained with structural simulations were used to create the fluid domains employed within transient fluid dynamic analyses. This sequential approach was applied to investigate the final kissing balloon (FKB) inflation during the provisional side branch technique. Mechanical stresses in the arterial wall and the stent as well as wall shear stresses along the arterial wall were examined before and after the FKB deployment. FKB provoked average mechanical stresses in the arterial wall almost 2.5 times higher with respect to those induced by inflation of the stent in the main branch only. Results also enlightened FKB benefits in terms of improved local blood flow pattern for the side branch access. As a drawback, the FKB generates a larger region of low wall shear stress. In particular, after FKB the percentage of area characterized by wall shear stresses lower than 0.5 Pa was 79.0%, while before the FKB it was 62.3%. For these reasons, a new tapered balloon dedicated to bifurcations was proposed. The inclusion of the modified balloon has reduced the mechanical stresses in the proximal arterial vessel to 40% and the low wall shear stress coverage area to 71.3%. In conclusion, these results show the relevance of the adopted sequential approach to study the wall mechanics and the hemodynamics created by stent deployment.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleSequential Structural and Fluid Dynamic Numerical Simulations of a Stented Bifurcated Coronary Artery
    typeJournal Paper
    journal volume133
    journal issue12
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4005476
    journal fristpage121010
    identifier eissn1528-8951
    keywordsFluids
    keywordsComputer simulation
    keywordsStress
    keywordsEngineering simulation
    keywordsBifurcation
    keywordsstents
    keywordsCoronary arteries AND Blood flow
    treeJournal of Biomechanical Engineering:;2011:;volume( 133 ):;issue: 012
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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