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首页> 外文期刊>Journal of Biomechanics >Cavitation phenomena in mechanical heart valves: the role of squeeze flow velocity and contact area on cavitation initiation between two impinging rods.
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Cavitation phenomena in mechanical heart valves: the role of squeeze flow velocity and contact area on cavitation initiation between two impinging rods.

机译:机械心脏瓣膜中的气蚀现象:挤压流速和接触面积对两个撞击杆之间的气蚀引发的作用。

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摘要

In this study, the closing dynamics of two impinging rods were experimentally analyzed to simulate the cavitation phenomena associated with mechanical heart valve closure. The purpose of this study was to investigate the cavitation phenomena with respect to squeeze flow between two impinging surfaces and the parameter that influences cavitation inception. High-speed flow imaging was employed to visualize and identify regions of cavitation. The images obtained favored squeeze flow as an important mechanism in cavitation inception. A correlation study of the effects of impact velocities, contact areas and squeeze flow velocity on cavitation inception showed that increasing impact velocities results in an increase in the risk of cavitation. It was also shown that for similar impact velocities, regions near the point of impact were found to cavitate later for those with smaller contact areas. It was found that the decrease in contact areas and squeeze flow velocities would delay the onset and reduce the intensity of cavitation. It is also interesting to note that the squeeze flow velocity alone does not provide an indication if cavitation inception will occur. This is corroborated by the wide range of published critical squeeze flow velocity required for cavitation inception. It should be noted that the temporal acceleration of fluid, often neglected in the literature, can also play an important role on cavitation inception for unsteady flow phenomenon. This is especially true in mechanical heart valves, where for the same leaflet closing velocity, valves with a seat stop were observed to cavitate earlier. Based on these results, important inferences may be made to the design of mechanical heart valves with regards to cavitation inception.
机译:在这项研究中,通过实验分析了两个撞击杆的关闭动力学,以模拟与机械心脏瓣膜关闭相关的气蚀现象。这项研究的目的是研究关于两个撞击表面之间的挤压流动的空化现象以及影响空化开始的参数。高速流动成像用于可视化和识别空化区域。获得的图像有利于挤压流动,这是空化开始的重要机制。冲击速度,接触面积和挤压流速对空化开始的影响的相关研究表明,增加冲击速度会导致空化风险增加。还表明,对于相似的撞击速度,对于接触面积较小的那些,发现撞击点附近的区域随后会空化。已经发现,接触面积的减小和挤压流速的降低将延迟起效并降低空化的强度。还有趣的是,仅挤压流速并不能指示是否会发生气蚀现象。气蚀开始所需的各种已公布的临界挤压流速都得到了证实。应该注意的是,流体的时间加速度,在文献中经常被忽略,也可以在非稳态流动现象的空化开始中起重要作用。在机械心脏瓣膜中尤其如此,对于相同的瓣叶关闭速度,观察到带有阀座止动的瓣膜较早地空化。基于这些结果,可以就气蚀发生对机械心脏瓣膜的设计做出重要的推断。

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