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针对个体患者的计算血液动力学:从血管分叉的三角化表面生成结构化和共形六面体网格。

Patient-specific computational haemodynamics: generation of structured and conformal hexahedral meshes from triangulated surfaces of vascular bifurcations.

作者信息

De Santis G, De Beule M, Segers P, Verdonck P, Verhegghe B

机构信息

bioMMeda, Institute Biomedical Technology, Ghent University, De Pintelaan 185, Block B, BE-9000, Gent, Belgium.

出版信息

Comput Methods Biomech Biomed Engin. 2011 Sep;14(9):797-802. doi: 10.1080/10255842.2010.495066. Epub 2011 May 24.

Abstract

Measuring the blood flow is still limited by current imaging technologies and is generally overcome using computational fluid dynamics (CFD) which, because of the complex geometry of blood vessels, has widely relied on tetrahedral meshes. Hexahedral meshes offer more accurate results with lower-density meshes and faster computation as compared to tetrahedral meshes, but their use is limited by the far more complex mesh generation. We present a robust methodology for conformal and structured hexahedral mesh generation - applicable to complex arterial geometries as bifurcating vessels - starting from triangulated surfaces. Cutting planes are used to slice the lumen surface and to construct longitudinal Bezier splines. Afterwards, an isoparametric transformation is used to map a parametrically defined quadrilateral surface mesh into the vessel volume, resulting in stacks of sections which can then be used for sweeping. Being robust and open source based, this methodology may improve the current standard in patient-specific mesh generation and enhance the reliability of CFD to patient-specific haemodynamics.

摘要

目前的成像技术在测量血流方面仍存在局限性,通常使用计算流体动力学(CFD)来克服这一问题。由于血管几何形状复杂,CFD广泛依赖四面体网格。与四面体网格相比,六面体网格在低密度网格下能提供更准确的结果,计算速度也更快,但其应用受到更复杂的网格生成的限制。我们提出了一种用于共形和结构化六面体网格生成的稳健方法——适用于如分叉血管等复杂动脉几何形状——从三角化表面开始。切割平面用于切割管腔表面并构建纵向贝塞尔样条。之后,使用等参变换将参数定义的四边形表面网格映射到血管体积中,得到可用于扫掠的截面堆栈。这种方法稳健且基于开源,可能会改进当前特定患者网格生成的标准,并提高CFD对特定患者血流动力学的可靠性。

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