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首页> 外文期刊>The international journal of artificial organs >CFD simulation of a novel bileaflet mechanical heart valve prosthesis - an estimation of the Venturi passage formed by the leaflets.
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CFD simulation of a novel bileaflet mechanical heart valve prosthesis - an estimation of the Venturi passage formed by the leaflets.

机译:新型双叶机械心脏瓣膜假体的CFD模拟-由小叶形成的文丘里管通道的估计。

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The aim of this study was to validate the flow characteristics of the novel Helmholtz-Institute Aachen Bileaflet (HIA-BL) heart valve prosthesis. The curved leaflets of the HIA-BL valve form a Venturi passage between the leaflets at peak systole. By narrowing the cross section the flow accelerates and the static pressure at the central passage decreases according to the Venturi effect. The low-pressure zone between the leaflets is expected to stabilize the leaflets in fully open position at peak systole.To investigate the Venturi passage, the flow fields of two valve geometries were investigated by CFD (Computational Fluid Dynamics): one geometry exhibits curved leaflets resulting in a Venturi passage; the other geometry features straight leaflets. The flow profiles, pressure distribution and resulting torque of both passages were compared and investigated. Although flow profiles downstream of both valves were similar, the flow passages between the leaflets were different for the investigated leaflet geometries. The straight leaflet passage showed a large boundary layer separation zone near the leaflets and the lowest pressure at the leading edge of the leaflet. The Venturi passage showed a reduction of the boundary layer separation zones and the lowest pressure between the leaflets could be found in the narrowest flow cross section of the Venturi passage. Additionally, the resulting torque showed that the Venturi passage produced an opening momentum. The results demonstrate that the Venturi passage stabilizes the leaflets in open position at peak systole.
机译:这项研究的目的是验证新型的亥姆霍兹研究所亚琛比勒夫莱特(HIA-BL)心脏瓣膜假体的流动特性。 HIA-BL瓣的弯曲小叶在收缩期高峰时在小叶之间形成一个文丘里通道。通过使横截面变窄,根据文丘里效应,流动加速并且中央通道处的静压降低。预计小叶之间的低压区将使小叶稳定在收缩期的全开位置。为了研究文丘里通道,通过CFD(计算流体力学)研究了两种瓣膜几何形状的流场:一种几何形状呈现弯曲的小叶导致文丘里通道;其他几何特征是直的传单。比较和研究了两个通道的流量分布,压力分布和产生的扭矩。尽管两个瓣膜下游的流量分布相似,但对于所研究的小叶几何形状,小叶之间的流道是不同的。笔直的小叶通道在小叶附近显示出较大的边界层分离区,并且在小叶的前缘处具有最低的压力。文丘里通道显示出边界层分离区的减小,并且小叶之间的最低压力可以在文丘里通道的最窄流动截面中找到。此外,产生的扭矩表明文丘里通道产生了打开动量。结果表明文丘里通道使小叶在收缩期达到峰值时处于开放位置。

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