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Simulation of Pressure Losses in a Hemodialysis Graft Circuit with Computational Fluid Dynamics

机译:用计算流体力学模拟血液透析接枝回路中的压力损失

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Long-term hemodialysis is frequently provided with an arteriovenous (AV) graft implanted into an extremity. The useful life of AV grafts is limited by the development of stenosis at or downstream from the venous anastomosis. A better understanding of graft hemodynamics may allow improved assessment of the risk of thrombosis. Jones et al (J Biomech Eng 2005, 127: 60-66) developed a model of pressure losses for an experimental graft circuit using well-known hydrodynamic equations, and showed a reasonable prediction of pressure losses. Their model, however, had a number of assumptions based on the fixed geometry of a fabricated experimental model, whereas actual circuits have non-ideal geometries. The goal of this project was to create a 3D computational fluid dynamics (CFD) model using finite element analysis (FEA) based on the experimental graft geometry, simulate flow and pressure drops under the same experimental conditions, and compare results with both the experimental data and the hydrodynamic equation model. The FEA geometry was created in SolidWorks?? using identical dimensions to the experimental graft circuit, consisting of an inlet artery, graft conduit, venous outflow, anastomoses and stenosis. The geometry was imported into COMSOL Multiphysics?? and meshed with approximately 500,000 elements. Fluid flow was modeled using large eddy simulation with fluid parameters corresponding to the experimental model. Inlet boundary conditions were flow from 100 to 1200 ml/min. The results showed good general agreement with the experimental and hydrodynamic models. These results suggest that CFD can be applied, and would allow the study of various AV graft configurations seen clinically.
机译:长期血液透析通常是将动静脉(AV)移植物植入四肢。 AV移植物的使用寿命受到静脉吻合处或下游狭窄的发展的限制。更好地了解移植物的血流动力学可以改善对血栓形成风险的评估。 Jones等人(J Biomech Eng 2005,127:60-66)使用众所周知的流体动力学方程开发了用于实验接枝回路的压力损失模型,并显示了合理的压力损失预测。然而,他们的模型基于制造的实验模型的固定几何形状有许多假设,而实际电路具有非理想的几何形状。该项目的目标是基于实验移植物的几何形状,使用有限元分析(FEA)创建3D计算流体动力学(CFD)模型,在相同实验条件下模拟流量和压降,并将结果与​​两个实验数据进行比较和流体动力学方程模型。 FEA几何是在SolidWorks中创建的?使用与实验移植回路相同的尺寸,包括入口动脉,移植导管,静脉流出,吻合和狭窄。几何已导入到COMSOL Multiphysics中?并与约500,000个元素啮合。使用大涡流模拟对流体流动进行建模,并采用与实验模型相对应的流体参数。入口边界条件为100至1200 ml / min。结果表明,该模型与实验模型和流体力学模型具有良好的一般一致性。这些结果表明,可以应用CFD,并且可以研究临床上所见的各种AV移植结构。

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