首页> 外文会议>6th world congress of biomechanics (WCB 2010) >A Computational Framework to Explore the Role of Pulsatile Haemodynamics on Cerebral Aneurysm Development for Patient-Specific Arterial Geometries
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A Computational Framework to Explore the Role of Pulsatile Haemodynamics on Cerebral Aneurysm Development for Patient-Specific Arterial Geometries

机译:计算脉搏血流动力学在特定于患者动脉几何形状的脑动脉瘤发展中作用的计算框架

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摘要

A patient-specific cerebral aneurysm case was identified from clinical imaging data, and then segmented to create a geometrical representation of the aneurysm and surrounding vasculature. Using ANSYS ICEM CFD, the geometry was manipulated to remove the aneurysm and replace it with a short (initially cylindrical) section, which reconnected to the upstream and downstream arterial sections so that the surface gradients were continuous. This section is modelled using a realistic constitutive model of the arterial wall and is the location where the computational model of the aneurysm evolves. The aneurysm evolution FEA model is combined with detailed 3D haemodynamic solutions using ANSYS CFX. A rigid-wall approach is adopted to solve the flow, to derive the haemodynamic stimuli that act on the endothelial cell layer of the tissue. Additionally, the geometry of the aneurysm is obtained at systolic and diastolic pressures (using a quasi-static approach) to obtain the cyclic stretch experienced by the cells within the arterial wall. This is the first patient-specific model of cerebral aneurysm evolution to explicitly link growth and remodelling of arterial tissue to the local mechanical environment. It will provide the basis for investigating the role and importance of various mechanical stimuli on the progression of the disease and will yield improved understanding of the aetiology of cerebral aneurysm formation.
机译:从临床影像数据中识别出患者特定的脑动脉瘤病例,然后对其进行分割以创建动脉瘤和周围脉管系统的几何图形。使用ANSYS ICEM CFD,对几何进行处理以去除动脉瘤,并用短的(最初是圆柱形的)部分代替,然后再将其连接到上游和下游动脉部分,从而使表面梯度连续。该部分使用实际的动脉壁本构模型进行建模,并且是动脉瘤计算模型演变的位置。使用ANSYS CFX将动脉瘤演化FEA模型与详细的3D血液动力学解决方案结合在一起。采用刚性壁方法来解决血流,以导出作用在组织的内皮细胞层上的血液动力学刺激。另外,在收缩压和舒张压下(使用准静态方法)获得动脉瘤的几何形状,以获得动脉壁内细胞经历的循环拉伸。这是第一个明确将动脉组织的生长和重塑与局部机械环境联系起来的脑动脉瘤演化的患者特定模型。这将为研究各种机械刺激在疾病进展中的作用和重要性提供基础,并使人们对脑动脉瘤形成的病因学有了更好的了解。

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  • 来源
  • 会议地点 Singapore(SG);Singapore(SG);Singapore(SG);Singapore(SG);Singapore(SG);Singapore(SG)
  • 作者单位

    Institute of Biomedical Engineering and Department of Engineering Science, University of Oxford, Oxford, UK;

    ANSYS UK Ltd, Milton Park, Abingdon, UK;

    Centre for Computational Imaging Simulation Technologies in Biomedicine (CISTIB), Information Communication Technologies Department, Universitat Pompeu Fabra, c/ Tanger 122-140, E08018, Barcelona, Spain, Networking Research Center on Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), c/ Tanger 122-140, E08018, Barcelona, Spain;

    Centre for Computational Imaging Simulation Technologies in Biomedicine (CISTIB), Information Communication Technologies Department, Universitat Pompeu Fabra, c/ Tanger 122-140, E08018, Barcelona, Spain, Networking Research Center on Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), c/ Tanger 122-140, E08018, Barcelona, Spain;

    Institute of Biomechanics, Center of Biomedical Engineering, Graz University of Technology, Kronesgasse 5-1, 8010 Graz, Austria, Department of Solid Mechanics, School of Engineering Sciences, Royal Institute of Technology (KTH), Osquars Backe 1, 100 44 Stockholm, Sweden;

    Institute of Biomedical Engineering and Department of Engineering Science, University of Oxford, Oxford, UK;

    Institute of Biomedical Engineering and Department of Engineering Science, University of Oxford, Oxford, UK;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物工程学(生物技术);
  • 关键词

    cerebral aneurysm; haemodynamics; mechano- biology; growth; remodelling;

    机译:脑动脉瘤血液动力学机械生物学增长重塑;

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