一种通过机械心脏瓣膜血流可视化的新方法。

IF 1.7 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Dylan Goode, Ruby Dhaliwal, Jaymes Schmidt, Kibret Mequanint, Hadi Mohammadi
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引用次数: 0

摘要

机械心脏瓣膜(mhv)在处理瓣膜疾病中是必不可少的,但它们往往缺乏天然瓣膜的血流动力学效率,并且需要终身抗凝治疗来减轻血栓的形成。本研究介绍了一种新型的双瓣膜机械心脏瓣膜(BMHV), iValve,旨在通过更接近地模拟天然瓣膜的性能来解决这些挑战。本研究的核心是开发定制的稳态流动模拟器,该模拟器为通过mhv可视化流动动力学提供了一种具有成本效益和创新性的方法。与传统方法不同,该模拟器可以详细观察流动模式,重点关注关键区域,如中心流动和铰链区域。使用新型流动模拟器,将iValve与传统bmhv(包括SJM/Abbott Regent和On-X阀)的流量进行了比较。在前流阶段,iValve显著减少了流动干扰和中心流区涡的形成,并有效地洗涤了铰链。这些初步研究结果表明,iValve的设计最大限度地减少了能量损失和对血液元素的剪切应力,有可能减少或消除抗凝治疗的需要。稳态流动模拟器在这些评估中被证明是无价的,它提供了对流动行为的精确、定性的洞察,这是其他方法难以实现的。未来的工作,包括脉动流模拟和体内测试,将进一步探索iValve的临床潜力,并验证这些有希望的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel approach to flow visualization through mechanical heart valves.

Mechanical heart valves (MHVs) are indispensable in managing valvular disease, yet they often lack the hemodynamic efficiency of native valves and require lifelong anticoagulation therapy to mitigate thrombus formation. This study introduces a novel bileaflet mechanical heart valve (BMHV), the iValve, designed to address these challenges by more closely emulating native valve performance. Central to this research is the development of a custom-built steady-state flow simulator, which provides a cost-effective and innovative approach to visualizing flow dynamics through MHVs. Unlike traditional methods, this simulator allows for detailed observation of flow patterns, focusing on critical regions such as the central flow and hinge areas.Using the novel flow simulator, the flow through the iValve was compared to that of conventional BMHVs, including the SJM/Abbott Regent and On-X valves. The iValve exhibited significantly reduced flow disturbances and vortex formation in the central flow region and effective hinge washing during the forward flow phase. These preliminary findings suggest that the iValve design minimizes energy loss and shear stress on blood elements, potentially reducing or eliminating the need for anticoagulation therapy. The steady-state flow simulator proved invaluable in these assessments, offering precise, qualitative insights into flow behavior that would be challenging to achieve with other methods. Future work, including pulsatile flow simulations and in vivo testing, will further explore the iValve's clinical potential and validate these promising results.

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来源期刊
CiteScore
3.60
自引率
5.60%
发文量
122
审稿时长
6 months
期刊介绍: The Journal of Engineering in Medicine is an interdisciplinary journal encompassing all aspects of engineering in medicine. The Journal is a vital tool for maintaining an understanding of the newest techniques and research in medical engineering.
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