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A Study on the Mechanism for Cavitation in the Mechanical Heart Valves with an Electrohydraulic Total Artificial Heart

机译:电液全人工心脏在机械心脏瓣膜中空化的机理研究

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It has been conceived that the mechanical heart valves mounted in an artificial heart close much faster than in vivo use, resulting in cavitation bubbles formation. In this study, the mechanisms for cavitation in mechanical heart valves (MHVs) is investigated with monoleaflet and bileaflet valves in the mitral position with an electrohydraulic total artificial heart (EHTAH). The valve-closing velocity and pressure-drop through the valve were done, and a high-speed video camera was employed to investigate the mechanism for MHVs cavitation. The valve-closing velocity and pressure-drop of the bileaflet valves were less than that of the monoleaflet valves. Most of the cavitation bubbles in the monoleaflet valves were observed next to the edge of the valve stop and the inner side of the leaflet. With the bileaflet valves, cavitation bubbles were concentrated along the leaflet tip. Also, the number density of cavitation bubbles in the bileaflet valves was less than that of the monoleaflet valves. The number density of cavitation bubbles increased with an increase in the valve-closing velocity and the valve stop area. It is established that squeeze flow holds the key to cavitation in the mechanical heart valve. In a viewpoint of squeeze flow, the bileaflet valve with slow valve-closing velocity and small valve stop area, is safer to prevent of blood cell damage than the monoleaflet valves.
机译:已经想到,安装在人造心脏中的机械心脏瓣膜比体内使用快得多,从而导致空化气泡的形成。在这项研究中,对机械心瓣膜(MHVs)中的空化机理进行了研究,以单叶瓣膜和双叶瓣膜在二尖瓣位置使用电液全人工心脏(EHTAH)。完成了阀的关闭速度和通过阀的压降,并使用高速摄像机研究了MHV空化的机理。双叶瓣膜的瓣膜关闭速度和压降小于单叶瓣膜的瓣膜关闭速度和压降。在单瓣瓣膜的边缘和瓣叶内侧附近观察到单叶瓣膜中的大多数空化气泡。用双叶瓣,气穴气泡沿小叶尖端浓缩。而且,双叶瓣中的空化气泡的数量密度小于单叶瓣中的空化气泡的数量密度。空化气泡的数量密度随着阀门关闭速度和阀门止动面积的增加而增加。已经确定,挤压流是机械心脏瓣膜中气蚀的关键。从挤压流动的角度来看,双瓣膜瓣膜关闭速度较慢且瓣膜止动面积较小,比单瓣膜瓣膜更安全地防止血细胞损伤。

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