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    Targeted Particle Tracking in Computational Models of Human Carotid Bifurcations

    Source: Journal of Biomechanical Engineering:;2011:;volume( 133 ):;issue: 012::page 124501
    Author:
    Ian Marshall
    DOI: 10.1115/1.4005470
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A significant and largely unsolved problem of computational fluid dynamics (CFD) simulation of flow in anatomically relevant geometries is that very few calculated pathlines pass through regions of complex flow. This in turn limits the ability of CFD-based simulations of imaging techniques (such as MRI) to correctly predict in vivo performance. In this work, I present two methods designed to overcome this filling problem, firstly, by releasing additional particles from areas of the flow inlet that lead directly to the complex flow region (“preferential seeding”) and, secondly, by tracking particles both “downstream” and “upstream” from seed points within the complex flow region itself. I use the human carotid bifurcation as an example of complex blood flow that is of great clinical interest. Both idealized and healthy volunteer geometries are investigated. With uniform seeding in the inlet plane (in the common carotid artery (CCA)) of an idealized bifurcation geometry, approximately half the particles passed through the internal carotid artery (ICA) and half through the external carotid artery. However, of those particles entering the ICA, only 16% passed directly through the carotid bulb region. Preferential seeding from selected regions of the CCA was able to increase this figure to 47%. In the second method, seeding of particles within the carotid bulb region itself led to a very high proportion (97%) of pathlines running from CCA to ICA. Seeding of particles in the bulb plane of three healthy volunteer carotid bifurcation geometries led to much better filling of the bulb regions than by particles seeded at the inlet alone. In all cases, visualization of the origin and behavior of recirculating particles led to useful insights into the complex flow patterns. Both seeding methods produced significant improvements in filling the carotid bulb region with particle tracks compared with uniform seeding at the inlet and led to an improved understanding of the complex flow patterns. The methods described may be combined and are generally applicable to CFD studies of fluid and gas flow and are, therefore, of relevance in hemodynamics, respiratory mechanics, and medical imaging science.
    keyword(s): Particulate matter , Bifurcation , Geometry , Flow (Dynamics) AND Computational fluid dynamics ,
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      Targeted Particle Tracking in Computational Models of Human Carotid Bifurcations

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    contributor authorIan Marshall
    date accessioned2017-05-09T00:42:17Z
    date available2017-05-09T00:42:17Z
    date copyrightDecember, 2011
    date issued2011
    identifier issn0148-0731
    identifier otherJBENDY-27235#124501_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/145343
    description abstractA significant and largely unsolved problem of computational fluid dynamics (CFD) simulation of flow in anatomically relevant geometries is that very few calculated pathlines pass through regions of complex flow. This in turn limits the ability of CFD-based simulations of imaging techniques (such as MRI) to correctly predict in vivo performance. In this work, I present two methods designed to overcome this filling problem, firstly, by releasing additional particles from areas of the flow inlet that lead directly to the complex flow region (“preferential seeding”) and, secondly, by tracking particles both “downstream” and “upstream” from seed points within the complex flow region itself. I use the human carotid bifurcation as an example of complex blood flow that is of great clinical interest. Both idealized and healthy volunteer geometries are investigated. With uniform seeding in the inlet plane (in the common carotid artery (CCA)) of an idealized bifurcation geometry, approximately half the particles passed through the internal carotid artery (ICA) and half through the external carotid artery. However, of those particles entering the ICA, only 16% passed directly through the carotid bulb region. Preferential seeding from selected regions of the CCA was able to increase this figure to 47%. In the second method, seeding of particles within the carotid bulb region itself led to a very high proportion (97%) of pathlines running from CCA to ICA. Seeding of particles in the bulb plane of three healthy volunteer carotid bifurcation geometries led to much better filling of the bulb regions than by particles seeded at the inlet alone. In all cases, visualization of the origin and behavior of recirculating particles led to useful insights into the complex flow patterns. Both seeding methods produced significant improvements in filling the carotid bulb region with particle tracks compared with uniform seeding at the inlet and led to an improved understanding of the complex flow patterns. The methods described may be combined and are generally applicable to CFD studies of fluid and gas flow and are, therefore, of relevance in hemodynamics, respiratory mechanics, and medical imaging science.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleTargeted Particle Tracking in Computational Models of Human Carotid Bifurcations
    typeJournal Paper
    journal volume133
    journal issue12
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4005470
    journal fristpage124501
    identifier eissn1528-8951
    keywordsParticulate matter
    keywordsBifurcation
    keywordsGeometry
    keywordsFlow (Dynamics) AND Computational fluid dynamics
    treeJournal of Biomechanical Engineering:;2011:;volume( 133 ):;issue: 012
    contenttypeFulltext
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