首页> 外文期刊>The international journal of artificial organs >Cavitation phenomenon in monoleaflet mechanical heart valves with electrohydraulic total artificial heart.
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Cavitation phenomenon in monoleaflet mechanical heart valves with electrohydraulic total artificial heart.

机译:带电动液压全人工心脏的单叶机械心脏瓣膜中的空化现象。

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摘要

Recently, cavitation on the surface of mechanical heart valves has been studied as a cause of fractures occurring in implanted mechanical heart valves. In this study, to investigate the mechanism of cavitation bubbles associated with monoleaflet mitral valves in an electrohydraulic total artificial heart (EHTAH), and to select the best valves for our EHTAH system, we measured three parameters. First, an image was created of the cavitation bubbles using a high-speed camera. Second, pressure drop in the vicinity of the valve surface was measured using mini pressure sensor. Then, the closing of the valve was observed using a Laser displacement sensor. Most of the cavitation bubbles in the Medtronic Hall valve were observed at the edge of the valve stop. With the Omnicarbon valve, the cavitation bubbles were observed at the edge of the valve and on the inner side of the leaflet. On the other hand, cavitation bubbles were observed only on the inner side of the leaflet in Bjork-Shiley valve. Cavitation bubbles concentrated on the edge of the valve stop; the major cause of these cavitation bubbles was determined to be the squeeze flow. The formation of cavitation bubbles depended on the valve closing velocity and the valve leaflet geometry. From a viewpoint of squeeze flow, a low closing velocity and a small size of the valve stop could minimize cavitation.
机译:最近,已经研究了机械心脏瓣膜表面上的气穴现象,这是植入的机械心脏瓣膜中发生断裂的原因。在这项研究中,为了研究电液全人工心脏(EHTAH)中与单叶二尖瓣相关的空化气泡的机理,并为我们的EHTAH系统选择最佳的瓣膜,我们测量了三个参数。首先,使用高速相机创建空化气泡的图像。其次,使用微型压力传感器测量阀表面附近的压降。然后,使用激光位移传感器观察阀的关闭。在阀门止动件的边缘观察到Medtronic霍尔阀中的大多数空化气泡。使用Omnicarbon瓣膜时,在瓣膜边缘和小叶内侧观察到了空化气泡。另一方面,在Bjork-Shiley瓣膜中仅在小叶的内侧观察到空化气泡。空化气泡集中在阀塞的边缘;确定这些空化气泡的主要原因是挤压流动。空化气泡的形成取决于瓣膜关闭速度和瓣膜小叶的几何形状。从挤压流动的观点来看,低的关闭速度和较小的阀挡可以使空化最小化。

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