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Adverse Hemodynamic Conditions Associated with Mechanical Heart Valve Leaflet Immobility

机译:机械性心脏瓣膜小叶不动相关的不良血液动力学状况

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摘要

Artificial heart valves may dysfunction, leading to thrombus and/or pannus formations. Computational fluid dynamics is a promising tool for improved understanding of heart valve hemodynamics that quantify detailed flow velocities and turbulent stresses to complement Doppler measurements. This combined information can assist in choosing optimal prosthesis for individual patients, aiding in the development of improved valve designs, and illuminating subtle changes to help guide more timely early intervention of valve dysfunction. In this computational study, flow characteristics around a bileaflet mechanical heart valve were investigated. The study focused on the hemodynamic effects of leaflet immobility, specifically, where one leaflet does not fully open. Results showed that leaflet immobility increased the principal turbulent stresses (up to 400%), and increased forces and moments on both leaflets (up to 600% and 4000%, respectively). These unfavorable conditions elevate the risk of blood cell damage and platelet activation, which are known to cascade to more severe leaflet dysfunction. Leaflet immobility appeared to cause maximal velocity within the lateral orifices. This points to the possible importance of measuring maximal velocity at the lateral orifices by Doppler ultrasound (in addition to the central orifice, which is current practice) to determine accurate pressure gradients as markers of valve dysfunction.
机译:人工心脏瓣膜可能功能失调,导致血栓和/或血管pan形成。计算流体动力学是一种有前途的工具,可用于更好地了解心脏瓣膜血流动力学,量化详细的流速和湍流应力以补充多普勒测量。这些综合信息可以帮助为个别患者选择最佳的修复体,帮助开发改进的瓣膜设计,并阐明细微的变化,以帮助指导更及时的瓣膜功能障碍的早期干预。在这项计算研究中,研究了双叶机械心脏瓣膜周围的流动特性。该研究集中在小叶固定的血流动力学影响上,特别是在一张小叶没有完全打开的情况下。结果表明,叶片不动增加了主湍流应力(高达400%),并且增加了两个叶片上的力和力矩(分别高达600%和4000%)。这些不利条件增加了血细胞损伤和血小板活化的风险,已知这些疾病会加剧严重的小叶功能障碍。小叶的不动似乎引起侧孔内的最大速度。这指出了可能的重要性,即通过多普勒超声(除了当前的实践中的中心孔),通过多普勒超声测量侧孔的最大速度,以确定准确的压力梯度作为瓣膜功能障碍的标志。

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