De Hart J, Baaijens F P T, Peters G W M, Schreurs P J G
Department of Mechanical Engineering, Eindhoven University of Technology, Building W-hoog 4.117, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.
J Biomech. 2003 May;36(5):699-712. doi: 10.1016/s0021-9290(02)00448-7.
The importance of the aortic root compliance in the aortic valve performance has most frequently been ignored in computational valve modeling, although it has a significant contribution to the functionality of the valve. Aortic root aneurysm or (calcific) stiffening severely affects the aortic valve behavior and, consequently, the cardiovascular regulation. The compromised mechanical and hemodynamical performance of the valve are difficult to study both 'in vivo' and 'in vitro'. Computational analysis of the valve enables a study on system responses that are difficult to obtain otherwise. In this paper a numerical model of a fiber-reinforced stentless aortic valve is presented. In the computational evaluation of its clinical functioning the interaction of the valve with the blood is essential. Hence, the blood-tissue interaction is incorporated in the model using a combined fictitious domain/arbitrary Lagrange-Euler formulation, which is integrated within the Galerkin finite element method. The model can serve as a diagnostic tool for clinical purposes and as a design tool for improving existing valve prostheses or developing new concepts. Structural mechanical and fluid dynamical aspects are analyzed during the systolic course of the cardiac cycle. Results show that aortic root compliance largely influences the valve opening and closing configurations. Stresses in the delicate parts of the leaflets are substantially reduced if fiber-reinforcement is applied and the aortic root is able to expand.
在计算瓣膜模型中,主动脉根部顺应性对主动脉瓣性能的重要性常常被忽视,尽管它对瓣膜功能有重大贡献。主动脉根部瘤或(钙化)硬化会严重影响主动脉瓣的行为,进而影响心血管调节。瓣膜受损的机械和血液动力学性能在“体内”和“体外”都很难研究。瓣膜的计算分析能够对难以通过其他方式获得的系统反应进行研究。本文提出了一种纤维增强无支架主动脉瓣的数值模型。在对其临床功能进行计算评估时,瓣膜与血液的相互作用至关重要。因此,使用组合虚拟域/任意拉格朗日 - 欧拉公式将血液 - 组织相互作用纳入模型,该公式集成在伽辽金有限元方法中。该模型可作为临床诊断工具,也可作为改进现有瓣膜假体或开发新概念的设计工具。在心动周期的收缩期过程中分析结构力学和流体动力学方面。结果表明,主动脉根部顺应性在很大程度上影响瓣膜的开闭构型。如果应用纤维增强且主动脉根部能够扩张,则瓣叶脆弱部位的应力会大幅降低。