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Micro Particle Image Velocimetry Measurements of Steady Diastolic Leakage Flow in the Hinge of a St. Jude Medical® Regent™ Mechanical Heart Valve

机译:微粒图像测速仪测量St. JudeMedical®Regent™机械心脏瓣膜铰链中稳定的舒张渗漏流量

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摘要

A number of clinical, in vitro and computational studies have shown the potential for thromboembolic complications in bileaflet mechanical heart valves (BMHV), primarily due to the complex and unsteady flows in the valve hinges. These studies have focused on quantitative and qualitative parameters such as velocity magnitude, turbulent shear stresses, vortex formation and platelet activation to identify potential for blood damage. However, experimental characterization of the whole flow fields within the valve hinges has not yet been conducted. This information can be utilized to investigate instantaneous damage to blood elements and also to validate numerical studies focusing on the hinge's complex fluid dynamics. The objective of this study was therefore to develop a high-resolution imaging system to characterize the flow fields and global velocity maps in a BMHV hinge. In this study, the steady leakage hinge flow fields representing the diastolic phase during the cardiac cycle in a 23 mm St. Jude Medical (SJM) Regent BMHV in the aortic position were characterized using a two-dimensional Micro Particle Image Velocimetry (μPIV) system. Diastolic flow was simulated by imposing a static pressure head on the aortic side. Under these conditions, a reverse flow jet from the aortic to the ventricular side was observed with velocities in the range of 1.47 to 3.24 m/s, whereas low flow regions were observed on the ventricular side of the hinge with viscous shear stress magnitude up to 60 N/m2. High velocities and viscous shearing may be associated with platelet activation & hemolysis, while low flow zones can cause thrombosis due to increased residence time in the hinge. Overall, this study provides a high spatial resolution experimental technique to map the fluid velocity in the BMHV hinge, which can be extended to investigate micron-scale flow domains in various prosthetic devices under different hemodynamic conditions.
机译:许多临床,体外和计算研究表明,双叶型机械心脏瓣膜(BMHV)可能发生血栓栓塞并发症,这主要是由于瓣膜铰链中的流动复杂且不稳定。这些研究集中在定量和定性参数上,例如速度大小,湍流剪切应力,涡旋形成和血小板活化,以识别潜在的血液损害。但是,尚未进行阀铰链内整个流场的实验表征。该信息可用于调查对血液元素的瞬时损害,还可用于验证以铰链的复杂流体动力学为重点的数值研究。因此,本研究的目的是开发一种高分辨率成像系统,以表征BMHV铰链中的流场和整体速度图。在这项研究中,使用二维微颗粒图像测速(μPIV)系统表征了主动脉位置23 mm St. Jude Medical(SJM)Regent BMHV中代表心动周期期间舒张期的稳定泄漏铰链流场。 。通过在主动脉侧施加静压头来模拟舒张流。在这些条件下,观察到从主动脉到心室侧的反向流动射流,速度在1.47至3.24 m / s的范围内,而在铰链的心室侧观察到低流动区域,粘性剪切应力幅度最大为60 N / m 2 。高速和粘性剪切可能与血小板活化和溶血有关,而低流量区域由于在铰链中停留时间增加而可能导致血栓形成。总体而言,这项研究提供了一种高空间分辨率的实验技术来绘制BMHV铰链中的流体速度,该技术可以扩展为研究在不同血液动力学条件下各种假体装置中的微米级流动域。

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