首页> 外文会议>ASME summer bioengineering conference;SBC2010 >MASS-SPRING VS. FINITE ELEMENT MODELS OF ANISOTROPIC HEART VALVES: SPEED AND ACCURACY
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MASS-SPRING VS. FINITE ELEMENT MODELS OF ANISOTROPIC HEART VALVES: SPEED AND ACCURACY

机译:大众VS.各向异性心阀的有限元模型:速度和精度

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摘要

Heat valve dysfunction can lead to heart failure and death, and surgery is the standard treatment. Valve repair surgery is performed under cardiopulmonary bypass making it difficult for the surgeon to know if a surgical modification will be effective when blood flow is restored. A surgical planning system has been proposed to improve surgical outcomes by allowing a surgeon to explore valve repair strategies on a computer model of a patient's valve (1). Many groups have published computational models of heart valves based on the finite element (FE) method, but they are prohibitively slow for simulating valve mechanics in an interactive setting. Mass-spring (MS) networks have been used as an alternative to FE methods for modeling deformable bodies, trading off accuracy for speed.rnIn this study, we assess the trade-off between speed and accuracy in an anisotropic MS model of aortic valve leaflets. We compare accuracy and computational cost of a MS model to a FE model of a membrane formulated for large deformations. We first compare stress-strain curves of simulated square patches of membrane under biaxial loading to stress-strain curves calculated directly from the constitutive law. Then, to assess accuracy in a way that is more relevant to heart valve loading, we simulate deformation of a semicircular membrane under typical pressure experienced by the aortic valve under peak load.
机译:热阀功能障碍可导致心力衰竭和死亡,外科手术是标准治疗方法。瓣膜修复手术是在体外循环下进行的,这使得外科医生很难知道当恢复血液流动时,进行外科手术是否有效。已经提出了一种手术计划系统,以通过允许外科医生在患者瓣膜的计算机模型上探索瓣膜修复策略来改善手术效果(1)。许多小组已经发布了基于有限元(FE)方法的心脏瓣膜的计算模型,但是在交互式环境中模拟心脏瓣膜力学的速度却非常慢。质量弹簧(MS)网络已被用作有限元方法的替代方法,用于建模可变形体,以速度为代价进行权衡.rn在本研究中,我们评估了主动脉瓣小叶的各向异性MS模型中速度与准确性之间的权衡。我们将MS模型的精确度和计算成本与为大变形而制定的膜的FE模型进行比较。我们首先将双轴载荷下模拟的方形膜片的应力-应变曲线与直接根据本构律计算的应力-应变曲线进行比较。然后,为了以与心脏瓣膜负荷更相关的方式评估准确性,我们模拟了在峰值负荷下主动脉瓣承受的典型压力下半圆形膜的变形。

著录项

  • 来源
  • 会议地点 Naples FL(US);Naples FL(US)
  • 作者单位

    Department of Biomedical EngineeringrnTufts University Medford, MA, USArnDepartment of Cardiac Surgery Children's Hospital Boston, MA, USA;

    Department of Bioengineering University of Pittsburgh Pittsburgh, PA, USA;

    Department of Cardiac Surgery Children's Hospital Boston, MA, US;

    Harvard School of Engineering and Applied Sciences Cambridge, MA, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人体工程学;
  • 关键词

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