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    낭상 뇌동맥류 혈류유동에서 비뉴우토니안 유체 모델의 영향

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    https://www.riss.kr/link?id=A82637379

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    The importance of shear thinning non-Newtonian blood rheology on the hemodynamic characteristics of idealized cerebral saccular aneurysms were investigated by carrying out CFD simulations assuming two different non-Newtonian rheology models (Carreau and Ballyk models). To explore effects of vessel curvature, a straight and a curved vessel geometry were considered. The wall shear stress(WSS), relative residence time(RRT) and velocity distribution were compared at the different phases of cardiac cycle. As expected, blood entered the aneurysm at the distal neck and created large vortex in both aneurysms, but with higher momentum on the curved vessel. Hemodynamic characteristics such as WSS, and RRT exhibited only minor effects by choice of different rheological models although Ballyk model produced relatively higher effects.
    We conclude that the assumption of Newtonian fluid is reasonable for studies aimed at quantifying the hemodynamic characteristics, in particular, WSS-based parameters, considering the current accuracy level of medical image of cerebral aneurysm.
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    The importance of shear thinning non-Newtonian blood rheology on the hemodynamic characteristics of idealized cerebral saccular aneurysms were investigated by carrying out CFD simulations assuming two different non-Newtonian rheology models (Carreau a...

    The importance of shear thinning non-Newtonian blood rheology on the hemodynamic characteristics of idealized cerebral saccular aneurysms were investigated by carrying out CFD simulations assuming two different non-Newtonian rheology models (Carreau and Ballyk models). To explore effects of vessel curvature, a straight and a curved vessel geometry were considered. The wall shear stress(WSS), relative residence time(RRT) and velocity distribution were compared at the different phases of cardiac cycle. As expected, blood entered the aneurysm at the distal neck and created large vortex in both aneurysms, but with higher momentum on the curved vessel. Hemodynamic characteristics such as WSS, and RRT exhibited only minor effects by choice of different rheological models although Ballyk model produced relatively higher effects.
    We conclude that the assumption of Newtonian fluid is reasonable for studies aimed at quantifying the hemodynamic characteristics, in particular, WSS-based parameters, considering the current accuracy level of medical image of cerebral aneurysm.

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    참고문헌 (Reference)

    1 Ford, M, "Virtual angiography for visualization and validation of computational models of aneurysm hemodynamics" 24 : 1586-1592, 2005

    2 Wiebers, D, "Unruptured intracranial aneurysms: natural history, clinical outcome, and risks of surgical and endovascular treatment" 362 : 103-110, 2003

    3 Ishibashi, T, "Unruptured intracranial aneurysms: incidence of rupture and risk factors" 40 : 313-316, 2009

    4 Himburg, H, "Spatial comparison between wall shear stress measures and porcine arterial endothelial permeability" 286 : H1916-1922, 2004

    5 Ballyk, P, "Simulation of non-newtonian blood flow in an end-to-side anastomosis" 31 : 565-586, 1994

    6 Rinkel, G, "Prevalence and risk of rupture of intracranial aneurysms: a systematic review" 29 : 251-256, 1998

    7 Lee, S, "On the relative importance of rheology for image-based CFD models of the carotid bifurcation" 129 : 273-278, 2007

    8 Rayz, V, "Numerical modeling of the flow in intracranial aneurysms: prediction of regions prone to thrombus formation" 36 : 1793-1804, 2008

    9 O'Callaghan, S, "Numerical modeling of Newtonian and non-Newtonian representation of blood in a distal end-to-side vascular bypass graft anastomosis" 28 : 70-74, 2006

    10 Johnston, B, "Non-Newtonian blood flow in human right coronary arteries: steady state simulations" 37 : 709-720, 2004

    1 Ford, M, "Virtual angiography for visualization and validation of computational models of aneurysm hemodynamics" 24 : 1586-1592, 2005

    2 Wiebers, D, "Unruptured intracranial aneurysms: natural history, clinical outcome, and risks of surgical and endovascular treatment" 362 : 103-110, 2003

    3 Ishibashi, T, "Unruptured intracranial aneurysms: incidence of rupture and risk factors" 40 : 313-316, 2009

    4 Himburg, H, "Spatial comparison between wall shear stress measures and porcine arterial endothelial permeability" 286 : H1916-1922, 2004

    5 Ballyk, P, "Simulation of non-newtonian blood flow in an end-to-side anastomosis" 31 : 565-586, 1994

    6 Rinkel, G, "Prevalence and risk of rupture of intracranial aneurysms: a systematic review" 29 : 251-256, 1998

    7 Lee, S, "On the relative importance of rheology for image-based CFD models of the carotid bifurcation" 129 : 273-278, 2007

    8 Rayz, V, "Numerical modeling of the flow in intracranial aneurysms: prediction of regions prone to thrombus formation" 36 : 1793-1804, 2008

    9 O'Callaghan, S, "Numerical modeling of Newtonian and non-Newtonian representation of blood in a distal end-to-side vascular bypass graft anastomosis" 28 : 70-74, 2006

    10 Johnston, B, "Non-Newtonian blood flow in human right coronary arteries: steady state simulations" 37 : 709-720, 2004

    11 Steinman, D, "Image-based computational simulation of flow dynamics in a giant intracranial aneurysm" 24 : 559-566, 2003

    12 Stuhne, G.R, "Finite-element modeling of the hemodynamics of stented aneurysms" 126 : 382-387, 2004

    13 Seo, T, "Computational study of fluid mechanical disturbance induced by endovascular stents" SPRINGER 33 : 444-456, 2005

    14 Biro, G, "Comparison of acute cardiovascular effects and oxygen-supply following haemodilution with dextran, stroma-free haemoglobin solution and fluorocarbon suspension" 16 : 194-204, 1982

    15 Sforza, D, "Blood-flow characteristics in a terminal basilar tip aneurysm prior to its fatal rupture" 31 : 1127-1131, 2010

    16 Valencia, A, "Blood flow dynamics in saccular aneurysm models of the basilar artery" 128 : 516-526, 2006

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2027 평가 재인증평가 신청대상 (재인증)
    2021-01-01 등재 등재학술지 유지 (재인증) KCI등재
    2018-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2015-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2011-01-01 등재 등재 1차 FAIL (등재유지) KCI등재
    2009-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2006-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2005-06-16 학술지명변경 외국어명 : Jpurnal of Computatuonal Fluids Engineering -> Korean Society of Computatuonal Fluids Engineering KCI등재후보
    2005-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2004-01-01 등재 등재후보 1차 FAIL (등재후보1차) KCI등재후보
    2002-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.2 0.2 0.19
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.16 0.15 0.405 0.05
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