The effect of inlet and outlet boundary conditions in image-based CFD modeling of aortic flow

被引:64
|
作者
Madhavan, Sudharsan [1 ]
Kemmerling, Erica M. Cherry [1 ]
机构
[1] Tufts Univ, Dept Mech Engn, 200 Coll Ave, Medford, MA 02155 USA
关键词
Inlet boundary conditions; Womersley; Windkessel; Outlet boundary conditions; COMPUTATIONAL FLUID-DYNAMICS; MECHANICAL HEART-VALVE; WALL SHEAR-STRESS; BLOOD-FLOW; NUMERICAL-SIMULATION; CORONARY-ARTERIES; VELOCITY PROFILES; PULSATILE FLOW; CAROTID BIFURCATION; HEMODYNAMICS;
D O I
10.1186/s12938-018-0497-1
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Background: Computational modeling of cardiovascular flow is a growing and useful field, but such simulations usually require the researcher to guess the flow's inlet and outlet conditions since they are difficult and expensive to measure. It is critical to determine the amount of uncertainty introduced by these assumptions in order to evaluate the degree to which cardiovascular flow simulations are accurate. Our work begins to address this question by examining the sensitivity of flow to several different assumed velocity inlet and outlet conditions in a patient-specific aorta model. Methods: We examined the differences between plug flow, parabolic flow, linear shear flows, skewed cubic flow profiles, and Womersley flow at the inlet. Only the shape of the inlet velocity profile was varied-all other parameters were identical among these simulations. Secondary flow in the form of a counter-rotating pair of vortices was also added to parabolic axial flow to study its effect on the solution. In addition, we examined the differences between two-element Windkessel, three element Windkessel and the outflow boundary conditions. In these simulations, only the outlet boundary condition was varied. Results: The results show axial and in-plane velocities are considerably different close to the inlet for the cases with different inlet velocity profile shapes. However, the solutions are qualitatively similar beyond 1.75D, where D is the inlet diameter. This trend is also observed in other quantities such as pressure and wall shear stress. Normalized root-mean-square deviation, a measure of axial velocity magnitude differences between the different cases, generally decreases along the streamwise coordinate. The linear shear inlet velocity boundary condition and plug velocity boundary condition solution exhibit the highest time-averaged wall shear stress, approximately 8% higher than the parabolic inlet velocity boundary condition. Upstream of 1D from the inlet, adding secondary flow has a significant impact on temporal wall shear stress distributions. This is especially observable during diastole, when integrated wall shear stress magnitude varies about 26% between simulations with and without secondary flow. The results from the outlet boundary condition study show the Windkessel models differ from the outflow boundary condition by as much as 18% in terms of time-averaged wall shear stress. Furthermore, normalized root-mean-square deviation of axial velocity magnitude, a measure of deviation between Windkessel and the outflow boundary condition, increases along the streamwise coordinate indicating larger variations near outlets. Conclusion: It was found that the selection of inlet velocity conditions significantly affects only the flow region close to the inlet of the aorta. Beyond two diameters distal to the inlet, differences in flow solution are small. Although additional studies must be performed to verify this result, the data suggest that it is important to use patient-specific inlet conditions primarily if the researcher is concerned with the details of the flow very close to the inlet. Similarly, the selection of outlet conditions significantly affects the flow in the vicinity of the outlets. Upstream of five diameters proximal to the outlet, deviations between the outlet boundary conditions examined are insignificant. Although the inlet and outlet conditions only affect the flow significantly in their respective neighborhoods, our study indicates that outlet conditions influence a larger percentage of the solution domain.
引用
收藏
页数:20
相关论文
共 50 条
  • [21] Consistent inlet and outlet boundary conditions for particle methods
    Hu, Fangyuan
    Wang, Zidi
    Tamai, Tasuku
    Koshizuka, Seiichi
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2020, 92 (01) : 1 - 19
  • [22] Influence of inlet and outlet boundary conditions in internal flow computations at low Mach numbers
    Muller, B
    [J]. COMPUTATIONAL FLUID DYNAMICS '96, 1996, : 637 - 643
  • [23] The Effect of Blood Rheology and Inlet Boundary Conditions on Realistic Abdominal Aortic Aneurysms under Pulsatile Flow Conditions
    Tzirakis, Konstantinos
    Kamarianakis, Yiannis
    Kontopodis, Nikolaos
    Ioannou, Christos V. V.
    [J]. BIOENGINEERING-BASEL, 2023, 10 (02):
  • [24] Flow patterns and boundary conditions for inlet and outlet conduits of large pump system with low head
    Xu, Lei
    Lu, Wei-gang
    Lu, Lin-guang
    Dong, Lei
    Wang, Zhao-fei
    [J]. APPLIED MATHEMATICS AND MECHANICS-ENGLISH EDITION, 2014, 35 (06) : 675 - 688
  • [25] Flow patterns and boundary conditions for inlet and outlet conduits of large pump system with low head
    Lei Xu
    Wei-gang Lu
    Lin-guang Lu
    Lei Dong
    Zhao-fei Wang
    [J]. Applied Mathematics and Mechanics, 2014, 35 : 675 - 688
  • [26] Flow patterns and boundary conditions for inlet and outlet conduits of large pump system with low head
    徐磊
    陆伟刚
    陆林广
    董雷
    王兆飞
    [J]. Applied Mathematics and Mechanics(English Edition), 2014, 35 (06) : 675 - 688
  • [27] Inlet and outlet boundary conditions for the discrete velocity direction model
    Zhang, Zhenyu
    Zhao, Wei
    Zhao, Qingjun
    Lu, Guojing
    Xu, Jianzhong
    [J]. MODERN PHYSICS LETTERS B, 2018, 32 (04):
  • [28] A new treatment for boundary of laminar flow inlet or outlet in SPH
    Liang, Chaoxiang
    Huang, Jihong
    Shi, Wei
    [J]. Journal of Software Engineering, 2014, 8 (04): : 321 - 327
  • [29] Effect of Inlet and Outlet Flow Conditions on Natural Gas Parameters in Supersonic Separation Process
    Yang, Yan
    Wen, Chuang
    Wang, Shuli
    Feng, Yuqing
    [J]. PLOS ONE, 2014, 9 (10):
  • [30] INLET AND OUTLET CHARACTERISTICS BOUNDARY CONDITIONS FOR LARGE EDDY SIMULATIONS OF TURBOMACHINERY
    Odier, Nicolas
    Poinsot, Thierry
    Duchaine, Florent
    Gicquel, Laurent
    Moreau, Stephane
    [J]. PROCEEDINGS OF THE ASME TURBO EXPO: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, 2019, VOL 2C, 2019,