Standardized viscosity as a source of error in computational fluid dynamic simulations of cerebral aneurysms

被引:3
|
作者
Fillingham, Patrick [1 ]
Belur, Neethi [1 ]
Sweem, Rebecca [1 ]
Barbour, Michael C. [2 ]
Marsh, Laurel M. M. [2 ]
Aliseda, Alberto [2 ]
Levitt, Michael R. [1 ,2 ,3 ]
机构
[1] Univ Washington, Dept Neurol Surg, Seattle, WA 98195 USA
[2] Univ Washington, Dept Mech Engn, Seattle, WA USA
[3] Univ Washington, Dept Radiol, Seattle, WA USA
关键词
cerebral aneurysm; computational fluid dynamics; viscosity; BLOOD-VISCOSITY; MODELS; FLOW; RHEOLOGY;
D O I
10.1002/mp.16926
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
BackgroundComputational fluid dynamics (CFD) simulations are a powerful tool for studying cerebral aneurysms, capable of evaluating hemodynamics in a way that is infeasible with imaging alone. However, the difficulty of incorporating patient-specific information and inherent obstacles of in vivo validation have limited the clinical usefulness of CFD of cerebral aneurysms. In this work we investigate the effect of using standardized blood viscosity values in CFD simulations of cerebral aneurysms when compared to simulations of the same aneurysms using patient-specific viscosity values derived from hematocrit measurements.PurposeThe objective of this work is to determine the level of error, on average, that is, caused by using standardized values of viscosity in CFD simulations of cerebral aneurysms. By quantifying this error, we demonstrate the need for incorporating patient-specific viscosity in future CFD investigations of cerebral aneurysms.MethodsCFD simulations of forty-one cerebral aneurysms were conducted using patient-specific boundary conditions. For each aneurysm two simulations were conducted, one utilizing patient-specific blood viscosity derived from hematocrit measurements and another using a standardized value for blood viscosity. Hemodynamic parameters such as wall shear stress (WSS), wall shear stress gradient (WSSG), and the oscillatory shear index (OSI) were calculated for each of the simulations for each aneurysm. Paired t-tests for differences in the time-averaged maps of these hemodynamic parameters between standardized and patient-specific viscosity simulations were conducted for each aneurysm. Bland-Altman analysis was used to examine the cohort-wide changes in the hemodynamic parameters. Subjects were broken into two groups, those with higher than standard viscosity and those with lower than standard viscosity. An unpaired t-test was used to compare the percent change in WSS, WSSG, and OSI between patient-specific and standardized viscosity simulations for the two cohorts. The percent changes in hemodynamic parameters were correlated against the direction and magnitude of percent change in viscosity, aneurysm size, and aneurysm location. For all t-tests, a Bonferroni-corrected significance level of 0.0167 was used.Results63.2%, 41.5%, and 48.7% of aneurysms showed statistically significant differences between patient-specific and standardized viscosity simulations for WSS, WSSG, and OSI respectively. No statistically significant difference was found in the percent changes in WSS, WSSG, and OSI between the group with higher than standard viscosity and those with lower than standard viscosity, indicating an increase in viscosity can cause either an increase or decrease in each of the hemodynamic parameters. On a study-wide level no significant bias was found in either direction for WSS, WSSG, or OSI between the simulation groups due to the bidirectional effect of changing viscosity. No correlation was found between percent change of viscosity and percent change of WSS, WSSG, or OSI, meaning an after-the-fact correction for patient-specific viscosity is not feasible.ConclusionStandardizing viscosity values in CFD of cerebral aneurysms has a large and unpredictable impact on the calculated WSS, WSSG, and OSI when compared to CFD simulations of the same aneurysms using a patient-specific viscosity. We recommend implementing hematocrit-based patient-specific blood viscosity values for all CFD simulations of cerebral aneurysms.
引用
收藏
页码:1499 / 1508
页数:10
相关论文
共 50 条
  • [1] Computational fluid dynamic analysis of the initiation of cerebral aneurysms
    Fujimura, Soichiro
    Tanaka, Kazutoshi
    Takao, Hiroyuki
    Okudaira, Takuma
    Koseki, Hirokazu
    Hasebe, Akiko
    Suzuki, Takashi
    Uchiyama, Yuya
    Ishibashi, Toshihiro
    Otani, Katharina
    Karagiozov, Kostadin
    Fukudome, Koji
    Hayakawa, Motoharu
    Yamamoto, Makoto
    Murayama, Yuichi
    JOURNAL OF NEUROSURGERY, 2022, 137 (08) : 335 - 343
  • [2] Effect of Inflow on Computational Fluid Dynamic Simulation of Cerebral Bifurcation Aneurysms
    Farnoush, A.
    Qian, Y.
    Avolio, A.
    2011 ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2011, : 1025 - 1028
  • [3] Phantom-based experimental validation of computational fluid dynamics simulations on cerebral aneurysms
    Sun, Qi
    Groth, Alexandra
    Bertram, Matthias
    Waechter, Irina
    Bruijns, Tom
    Hermans, Roel
    Aach, Til
    MEDICAL PHYSICS, 2010, 37 (09) : 5054 - 5065
  • [4] Improving the accuracy of computational fluid dynamics simulations of coiled cerebral aneurysms using finite element modeling
    Fillingham, Patrick
    Bhathal, Julia Romero
    Marsh, Laurel M. M.
    Barbour, Michael C.
    Kurt, Mehmet
    Ionita, Ciprian N.
    Davies, Jason M.
    Aliseda, Alberto
    Levitt, Michael R.
    JOURNAL OF BIOMECHANICS, 2023, 157
  • [5] The impact of blood viscosity modeling on computational fluid dynamic simulations of pediatric patients with Fontan circulation
    Wei, Heng
    Bilgi, Coskun
    Cao, Kellie
    Detterich, Jon A.
    Pahlevan, Niema M.
    Cheng, Andrew L.
    PHYSICS OF FLUIDS, 2024, 36 (11)
  • [6] Influence of blood viscosity models and boundary conditions on the computation of hemodynamic parameters in cerebral aneurysms using computational fluid dynamics
    Hyeondong Yang
    Ineui Hong
    Yong Bae Kim
    Kwang-Chun Cho
    Je Hoon Oh
    Acta Neurochirurgica, 2023, 165 : 471 - 482
  • [7] Influence of blood viscosity models and boundary conditions on the computation of hemodynamic parameters in cerebral aneurysms using computational fluid dynamics
    Yang, Hyeondong
    Hong, Ineui
    Kim, Yong Bae
    Cho, Kwang-Chun
    Oh, Je Hoon
    ACTA NEUROCHIRURGICA, 2023, 165 (2) : 471 - 482
  • [8] Magnitude and role of wall shear stress on cerebral aneurysm - Computational fluid dynamic study of 20 middle cerebral artery aneurysms
    Shojima, M
    Oshima, M
    Takagi, K
    Torii, R
    Hayakawa, M
    Katada, K
    Morita, A
    Kirino, T
    STROKE, 2004, 35 (11) : 2500 - 2505
  • [9] Comprehensive validation of computational fluid dynamics simulations of in-vivo blood flow in patient-specific cerebral aneurysms
    Sun, Qi
    Groth, Alexandra
    Aach, Til
    MEDICAL PHYSICS, 2012, 39 (02) : 742 - 754
  • [10] Fluid-Structure Interaction Simulations of the Initiation Process of Cerebral Aneurysms
    Nagy, Jozsef
    Fenz, Wolfgang
    Miron, Veronika M.
    Thumfart, Stefan
    Maier, Julia
    Major, Zoltan
    Stefanits, Harald
    Oberndorfer, Johannes
    Stroh, Nico
    Mazanec, Vanessa
    Rauch, Philip-Rudolf
    Gruber, Andreas
    Gmeiner, Matthias
    BRAIN SCIENCES, 2024, 14 (10)