Pan Xianyu George, Corpuz Ashton M, Rajanna Manoj R, Johnson Emily L
Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, IN USA.
Department of Mechanical Engineering, Iowa State University, Ames, IA USA.
Eng Comput. 2024;40(6):3405-3427. doi: 10.1007/s00366-024-01973-5. Epub 2024 Jun 27.
Heart valves play a critical role in maintaining proper cardiovascular function in the human heart; however, valve diseases can lead to improper valvular function and reduced cardiovascular performance. Depending on the extent and severity of the valvular disease, replacement operations are often required to ensure that the heart continues to operate properly in the cardiac system. Transcatheter aortic valve replacement (TAVR) procedures have recently emerged as a promising alternative to surgical replacement approaches because the percutaneous methods used in these implant operations are significantly less invasive than open heart surgery. Despite the advantages of transcatheter devices, the precise deployment, proper valve sizing, and stable anchoring required to securely place these valves in the aorta remain challenging even in successful TAVR procedures. This work proposes a parametric modeling approach for transcatheter heart valves (THVs) that enables flexible valvular development and sizing to effectively generate existing and novel valve designs. This study showcases two THV configurations that are analyzed using an immersogeometric fluid-structure interaction (IMGA FSI) framework to demonstrate the influence of geometric changes on THV performance. The proposed modeling framework illustrates the impact of these features on THV behavior and indicates the effectiveness of parametric modeling approaches for enhancing THV performance and efficacy in the future.
心脏瓣膜在维持人体心脏正常的心血管功能方面起着关键作用;然而,瓣膜疾病会导致瓣膜功能异常和心血管性能下降。根据瓣膜疾病的程度和严重程度,通常需要进行置换手术以确保心脏在心血管系统中继续正常运作。经导管主动脉瓣置换术(TAVR)最近已成为外科置换方法的一种有前景的替代方案,因为这些植入手术中使用的经皮方法比心脏直视手术的侵入性要小得多。尽管经导管装置有诸多优点,但即使在成功的TAVR手术中,要将这些瓣膜安全地放置在主动脉中所需的精确部署、合适的瓣膜尺寸确定以及稳定的锚定仍然具有挑战性。这项工作提出了一种用于经导管心脏瓣膜(THV)的参数化建模方法,该方法能够灵活地进行瓣膜开发和尺寸确定,以有效地生成现有的和新颖的瓣膜设计。本研究展示了两种THV构型,使用浸没几何流体 - 结构相互作用(IMGA FSI)框架对其进行分析,以证明几何变化对THV性能的影响。所提出的建模框架说明了这些特征对THV行为的影响,并指出了参数化建模方法在未来提高THV性能和功效方面的有效性。