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采用流固耦合方法对升主动脉瘤的血流动力学评估。

Hemodynamic assessments of the ascending thoracic aortic aneurysm using fluid-structure interaction approach.

机构信息

Department of Mechanical Engineering, University of British Columbia, 2054-6250 Applied Science Lane, Vancouver, BC, V6T 1Z4, Canada.

Biomedical Engineering Program, University of British Columbia, 2054-6250 Applied Science Lane, Vancouver, BC, V6T 1Z4, Canada.

出版信息

Med Biol Eng Comput. 2018 Mar;56(3):435-451. doi: 10.1007/s11517-017-1693-z. Epub 2017 Aug 11.

Abstract

Current assessment and management of ascending thoracic aortic aneurysm (ATAA) rely heavily on the diameter of the ATAA and blood pressure rather than biomechanical and hemodynamic parameters such as arterial wall deformation or wall shear stress. The objective of the current study was to develop an accurate computational method for modeling the mechanical responses of the ATAA to provide additional information in patient evaluations. Fully coupled fluid structure interaction simulations were conducted using data from cases with ATAA with measured geometrical parameters in order to evaluate and analyze the change in biomechanical responses under normotensive and hypertensive conditions. Anisotropic hyperelastic material property estimates were applied to the ATAA data which represented three different geometrical configurations of ATAAs. The resulting analysis showed significant variations in maximum wall shear stress despite minimal differences in flow velocity between two blood pressure conditions. Additionally, the three different ATAA conditions identified different aortic expansions that were not uniform under pulsatile pressure. The elevated wall stress with hypertension was also geometry-dependent. The developed models suggest that ATTA cases have unique characteristic in biomechanical and hemodynamic evaluations that can be useful in risk management.

摘要

目前,升主动脉瘤(ATAA)的评估和管理主要依赖于 ATAA 的直径和血压,而不是动脉壁变形或壁切应力等生物力学和血液动力学参数。本研究的目的是开发一种准确的计算方法来模拟 ATAA 的力学响应,以在患者评估中提供额外的信息。使用具有测量几何参数的 ATAA 病例的数据进行完全耦合的流固耦合模拟,以评估和分析在正常血压和高血压条件下生物力学响应的变化。各向异性超弹性材料特性估计应用于 ATAA 数据,代表了三种不同的 ATAA 几何构型。结果分析表明,尽管两种血压条件下的血流速度差异很小,但最大壁切应力有显著差异。此外,三种不同的 ATAA 情况确定了在脉动压力下不均匀的不同主动脉扩张。高血压时的壁应力升高也与几何形状有关。所开发的模型表明,ATAA 病例在生物力学和血液动力学评估方面具有独特的特征,这在风险管理中可能很有用。

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