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Scale-up of an unsteady flow field for enhanced spatial and temporal resolution of PIV measurements: application to leaflet wake flow in a mechanical heart valve

机译:扩大非稳态流场以增强PIV测量的时空分辨率:应用于机械心脏瓣膜的小叶尾流

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A scale-up approach is developed to enhance effective spatial and temporal resolution of PIV measurements. An analysis shows that complete similarity can be maintained for certain unsteady flows and that all types of error in PIV are either reduced or unaffected by scale-up. Implementation and results are described for flow through a mechanical heart valve (MHV), in which high resolution is necessary to advance understanding of the effects of small-scale flow structure on blood cells. With a large-scale model geometry and a low-viscosity model fluid, spatial and temporal resolutions are increased by factors of 5.8 and 118, respectively, yielding the finest resolution to date for MHV flow. Measurements near the downstream tip of a valve leaflet detect eddies as small as 400 μm shed in the leaflet wake. Impulsively started flow exhibits vortex shedding frequencies broadly consistent with the literature on flat-plate and aerofoil wakes, while the physiological unsteady flow waveform promotes 40% higher frequency at peak flow.
机译:开发了一种放大方法来增强PIV测量的有效时空分辨率。分析表明,对于某些不稳定的流,可以保持完全相似,并且PIV中的所有类型的错误都可以减少或不受放大的影响。描述了通过机械心脏瓣膜(MHV)的血流的实现方法和结果,其中高分辨率是提高对小规模血流结构对血细胞影响的认识所必需的。对于大型模型几何体和低粘度模型流体,空间和时间分辨率分别提高了5.8和118倍,为MHV流动提供了迄今为止最精细的分辨率。瓣膜小叶下游尖端附近的测量可检测出小叶尾流中小至400μm的涡流。冲动开始流动具有涡旋脱落频率,与平板和翼型尾流上的文献大致一致,而生理不稳定流动波形则在峰值流动时促使其频率增加40%。

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