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Effects of planar and nonplanar curved flow paths on the hemodynamics of helical conduits for coronary artery bypass grafting: A numerical study

机译:平面和非平面弯曲流动路径对冠状动脉旁路嫁接螺旋管道血流动力学的影响:数值研究

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摘要

Helical geometries to induce swirling and spiral flow in prosthetic grafts have been hypothesized as a possible way to improve the clinical outcomes in patients undergoing coronary artery bypass grafting. In this paper, the transient flow behavior in helical bypass conduits with two different curved flow paths (planar and nonplanar) was investigated. Numerical methods were used to examine the flow physics downstream of four idealized bypass conduits attached to an aorta. The flow field in the bypass conduits was examined based on a non-Newtonian blood-analog fluid with relevant physiological waveforms characterized by a Womersley number alpha of 2.13 and a mean Reynolds number Re-mean of 107. The effects of nonplanar curvature and helicity were studied independently based on four idealized grafts. For all models, the axial flow downstream of the grafts resembles the oscillatory flow in straight tubes with a low alpha. The local secondary flow structures correspond closely to the strength of the swirling flow induced by the helical geometry. The helical conduit with a planar curved flow path in general consists of a pair of asymmetric vortices downstream. The introduction of a nonplanar curved flow path significantly increases the degree of asymmetry and leads to the transition from a double-vortex structure to a single swirling vortex flow. It is demonstrated that the swirling flow induced by the planar curvature promotes greater in-plane mixing downstream of the graft than the nonplanar curvature. However, the analysis of hemodynamic parameters reveals the effectiveness of a nonplanar curved flow path in the helical conduit in significantly elevating the overall mean wall shear stress. These findings demonstrate the possibility of using helical geometries and nonplanar curved flow paths in the design of external stents to independently control the mixing behavior and hemodynamic environment in coronary bypass conduits.
机译:螺旋形态以诱导假体移植物中的旋转和螺旋流动已经假设是改善经历冠状动脉旁路接枝患者患者临床结果的可能方法。本文研究了具有两个不同弯曲流动路径(平面和非平面)的螺旋旁路导管中的瞬态流动性。使用数值方法检查附着在主动脉的四个理想化的旁路导管下游的流理物理学。基于非牛顿血液 - 模拟流体检查旁路管道中的流场,其具有由2.13的Womersley Numberα的相关生理波形,并且平均雷诺数重新平均值为107.非平面曲率和螺旋的影响基于四个理想的移植物独立研究。对于所有型号,移植物下游的轴向流动类似于具有低α的直管中的振荡流。局部二次流动结构紧密地对应于由螺旋几何诱导的旋流流动的强度。具有平面弯曲流动路径的螺旋导管通常由下游的一对不对称涡流组成。非平面曲线流动路径的引入显着提高了不对称程度,并导致从双涡结构到单个旋流涡流的过渡。证明平面曲率引起的旋流流动促进移植物下游的更大的面内混合,而不是非平面曲率。然而,对血流动力学参数的分析揭示了螺旋导管中的非平面弯曲流动路径的有效性显着提升了整体平均壁剪切应力。这些发现证明了在外部设计中使用螺旋形状物和非平面弯曲流动路径的可能性,以独立地控制冠状动脉旁路导管中的混合行为和血液动力学环境。

著录项

  • 来源
    《International Journal of Heat and Fluid Flow》 |2020年第12期|108690.1-108690.12|共12页
  • 作者单位

    Univ Southampton Malaysia Dept Aeronaut & Astronaut Johor Baharu 79200 Malaysia;

    Wichita State Univ Dept Aerosp Engn Wichita KS 67260 USA;

    Wichita State Univ Dept Aerosp Engn Wichita KS 67260 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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