首页> 外文会议>ASME/JSME/KSME Joint Fluids Engineering Conference >EXPERIMENTAL INVESTIGATION OF THE FLOW INSIDE THE ROTOR PASSAGE OF AN AXIAL VENTRICULAR ASSIST DEVICE
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EXPERIMENTAL INVESTIGATION OF THE FLOW INSIDE THE ROTOR PASSAGE OF AN AXIAL VENTRICULAR ASSIST DEVICE

机译:轴向心室辅助装置转子通道内流动的实验研究

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Ventricular assist devices (VAD) are designed to provide circulatory support to patients suffering from advanced-stage heart failure. While not pulsatile, the advantages of continuous axial flow VADs include a compact size and low mechanical failure rate. However, being compact, they operate at high speed, resulting in adverse effects, such as hemolysis caused by high flow shear and thrombosis formation in stagnant regions are common and threaten the successful use of the device. While state-of-the-art computational fluid dynamics (CFD) is widely used in designing these devices, detailed high-resolution experimental measurements of the flow within them are not readily available in the literature. Such experimental data is crucial for understanding the flow inside the VAD and its interaction with blood cells as well as for validating the CFD predictions. The present study investigates the flow inside a 1:1 exact replica of a VAD - ReliantHeart HeartAssist5®. This 12mm diameter device consists of an inlet guide vane (ICV), a rotor and a stator. However, unlike in the real machine, the rotor is driven by a thin shaft that penetrates through the center of the IGV. Refractive index-matching is used to facilitate optical measurements. Hence, all the blades and housing of the pump are made of transparent acrylic. The working fluid is a mixture of water, sodium iodide and glycerin, which matches the refractive index of acrylic, and the kinematic viscosity of blood. Performance tests have been carried out at speeds ranging from 7000 to 9000 RPM. Trends of the results are consistent with those of the actual machine. While scaled data for the pressure rise across the rotor at different speeds collapse, the total head rise across the entire machine does not. High-resolution 2D PIV measurements with vector spacing of 30μm have been conducted in meridional planes of the rotor passage at several blade orientations. They have been performed at 8000RPM and flowrate of 4.5L/min, consistent with physiological requirements. They show that near the rotor front end, the flow in the tip region is dominated by the tip leakage vortex (TLV), associated blockage effects, and very high turbulence level. The upstream end of this domain remains aligned with the leading edge, implying that blades persistently dissect the remnants of a previous TLVs. Interaction of the hub boundary layer with the blades also generates secondary flows. Downstream of the helical section of the rotor, the axial flow is high near the hub and low in the outer part of the passage due to leakage flow-related blockage. Hub boundary layer separation occurs upstream of the stator, generating a large circumferential vortex that occupies nearly half of the rotor span. The complexity of the flow structure and turbulence in this machine would be a challenge to model.
机译:心室辅助设备(VAD)旨在为患有晚期心力衰竭的患者提供循环支持。尽管不是脉动的,但连续轴向流VAD的优点包括尺寸紧凑和机械故障率低。但是,由于结构紧凑,它们以高速运行,因此会产生不利影响,例如由高流量剪切引起的溶血和在停滞区域形成血栓形成是普遍现象,并威胁到该设备的成功使用。尽管最先进的计算流体动力学(CFD)在设计这些设备时被广泛使用,但文献中尚不容易获得有关其中流动的详细高分辨率实验测量结果。这样的实验数据对于了解VAD内部的流动及其与血细胞的相互作用以及验证CFD预测至关重要。本研究调查了VAD的1:1精确副本-ReliantHeartHeartAssist5®内的流动。这种直径为12mm的装置由入口导向叶片(ICV),转子和定子组成。但是,与实际机器不同,转子由一根穿过IGV中心的细轴驱动。折射率匹配用于促进光学测量。因此,泵的所有叶片和外壳均由透明丙烯酸制成。工作流体是水,碘化钠和甘油的混合物,与丙烯酸的折射率和血液的运动粘度相匹配。性能测试已在7000至9000 RPM的速度范围内进行。结果的趋势与实际机器的趋势一致。虽然以不同速度在转子上的压力上升的比例数据崩溃了,但整个机器上的总压头上升却没有。已经在多个叶片方向的转子通道子午面上进行了矢量间距为30μm的高分辨率2D PIV测量。它们已在8000RPM和4.5L / min的流量下进行,符合生理要求。他们表明,在转子前端附近,叶尖区域的流动主要由叶尖泄漏涡(TLV),相关的阻塞效应和非常高的湍流度决定。该域的上游端与前缘保持对齐,这意味着刀片会持续解剖先前TLV的残留物。轮毂边界层与叶片的相互作用也产生二次流。在转子螺旋部分的下游,由于与泄漏流有关的阻塞,轴向流量在毂附近较高,而在通道的外部较低。轮毂边界层分离发生在定子的上游,从而产生大的周向涡流,其占据了转子跨度的近一半。该机器中流动结构和湍流的复杂性将是建模的挑战。

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