Fluid–Structure Interaction Aortic Valve Surgery Simulation: A Review

IF 1.8 Q3 MECHANICS
Fluids Pub Date : 2023-11-04 DOI:10.3390/fluids8110295
Alex G. Kuchumov, Anastasiya Makashova, Sergey Vladimirov, Vsevolod Borodin, Anna Dokuchaeva
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Abstract

The complicated interaction between a fluid flow and a deformable structure is referred to as fluid–structure interaction (FSI). FSI plays a crucial role in the functioning of the aortic valve. Blood exerts stresses on the leaflets as it passes through the opening or shutting valve, causing them to distort and vibrate. The pressure, velocity, and turbulence of the fluid flow have an impact on these deformations and vibrations. Designing artificial valves, diagnosing and predicting valve failure, and improving surgical and interventional treatments all require the understanding and modeling of FSI in aortic valve dynamics. The most popular techniques for simulating and analyzing FSI in aortic valves are computational fluid dynamics (CFD) and finite element analysis (FEA). By studying the relationship between fluid flow and valve deformations, researchers and doctors can gain knowledge about the functioning of valves and possible pathological diseases. Overall, FSI is a complicated phenomenon that has a great impact on how well the aortic valve works. Aortic valve diseases and disorders can be better identified, treated, and managed by comprehending and mimicking this relationship. This article provides a literature review that compiles valve reconstruction methods from 1952 to the present, as well as FSI modeling techniques that can help advance valve reconstruction. The Scopus, PubMed, and ScienceDirect databases were used in the literature search and were structured into several categories. By utilizing FSI modeling, surgeons, researchers, and engineers can predict the behavior of the aortic valve before, during, and after surgery. This predictive capability can contribute to improved surgical planning, as it provides valuable insights into hemodynamic parameters such as blood flow patterns, pressure distributions, and stress analysis. Additionally, FSI modeling can aid in the evaluation of different treatment options and surgical techniques, allowing for the assessment of potential complications and the optimization of surgical outcomes. It can also provide valuable information on the long-term durability and functionality of prosthetic valves. In summary, fluid–structure interaction modeling is an effective tool for predicting the outcomes of aortic valve surgery. It can provide valuable insights into hemodynamic parameters and aid in surgical planning, treatment evaluation, and the optimization of surgical outcomes.
流固耦合主动脉瓣手术模拟研究进展
流体流动与可变形结构之间复杂的相互作用被称为流固相互作用。FSI在主动脉瓣功能中起着至关重要的作用。当血液通过开启或关闭的瓣膜时,会对小叶施加压力,导致它们扭曲和振动。流体流动的压力、速度和湍流对这些变形和振动有影响。设计人工瓣膜,诊断和预测瓣膜衰竭,改进手术和介入治疗都需要了解主动脉瓣动力学中的FSI并建立模型。模拟和分析主动脉瓣内FSI最流行的技术是计算流体动力学(CFD)和有限元分析(FEA)。通过研究流体流动与瓣膜变形之间的关系,研究人员和医生可以了解瓣膜的功能和可能的病理疾病。总的来说,FSI是一个复杂的现象,对主动脉瓣的工作有很大的影响。通过理解和模仿这种关系,主动脉瓣疾病和紊乱可以更好地识别、治疗和管理。本文综述了1952年至今的阀门重建方法,以及有助于推进阀门重建的FSI建模技术。文献检索中使用了Scopus、PubMed和ScienceDirect数据库,并将其分为几个类别。通过使用FSI模型,外科医生、研究人员和工程师可以在手术前、手术中和手术后预测主动脉瓣的行为。这种预测能力有助于改进手术计划,因为它提供了对血流模式、压力分布和应力分析等血流动力学参数的有价值的见解。此外,FSI建模可以帮助评估不同的治疗方案和手术技术,允许评估潜在的并发症和优化手术结果。它还可以提供关于人工瓣膜的长期耐用性和功能的有价值的信息。总之,流固耦合模型是预测主动脉瓣手术结果的有效工具。它可以为血流动力学参数提供有价值的见解,并有助于手术计划,治疗评估和手术结果的优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Fluids
Fluids Engineering-Mechanical Engineering
CiteScore
3.40
自引率
10.50%
发文量
326
审稿时长
12 weeks
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