Lee Hwansung, Tsukiya Tomonori, Homma Akihiko, Kamimura Tadayuki, Takewa Yoshiaki, Tatsumi Eisuke, Taenaka Yoshiyuki, Takano Hisateru, Kitamura Soichiro
Department of Artificial Organs, Research Institute, National Cardiovascular Center, 5-7-1 Fujishiro-dai, Suita, Osaka 565-8565, Japan.
J Artif Organs. 2004;7(3):121-7. doi: 10.1007/s10047-004-0258-8.
Recently, cavitation on the surface of mechanical heart valves (MHVs) has been studied as a cause of fractures occurring in implanted MHVs. In the present study, we investigated the mechanism of MHV cavitation associated with the Björk-Shiley valve and the Medtronic Hall valve in an electrohydraulic total artificial heart (EHTAH). The valves were mounted in the mitral position in the EHTAH. The valve closing motion, pressure drop measurements, and cavitation capture were employed to investigate the mechanisms for cavitation in the MHV. There are no differences in valve closing velocity between the two valves, and its value ranged from 0.53 to 1.96 m/s. The magnitude of negative pressure increased with an increase in the heart rate, and the negative pressure in the Medtronic Hall valve was greater than that in the Björk-Shiley valve. Cavitation bubbles were concentrated at 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 the viewpoint of squeeze flow, the Björk-Shiley valve was less likely to cause blood cell damage than the Medtronic Hall valve in our EHTAH.
最近,人们对机械心脏瓣膜(MHV)表面的空化现象进行了研究,将其作为植入式MHV发生骨折的一个原因。在本研究中,我们在电动液压全人工心脏(EHTAH)中研究了与比约克-希利瓣膜和美敦力霍尔瓣膜相关的MHV空化机制。这些瓣膜安装在EHTAH的二尖瓣位置。通过瓣膜关闭运动、压降测量和空化捕捉来研究MHV中空化的机制。两种瓣膜的瓣膜关闭速度没有差异,其值在0.53至1.96米/秒之间。负压的大小随着心率的增加而增加,美敦力霍尔瓣膜中的负压大于比约克-希利瓣膜中的负压。空化气泡集中在瓣膜限位器的边缘;这些空化气泡的主要原因被确定为挤压流。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。从挤压流的角度来看,在我们的EHTAH中,比约克-希利瓣膜比美敦力霍尔瓣膜更不容易造成血细胞损伤。