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An Experimental Study of Pulsatile Flow in a Compliant Aortic Root Model under Varied Cardiac Outputs

机译:不同心输出量的顺应性主动脉根模型脉动血流的实验研究

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The fluid dynamics of a natural aortic valve are complicated due to the highly pulsatile flow conditions, the compliant wall boundaries, and the sophisticated geometry of the aortic root. In the present study, a pulsatile flow simulator was constructed and utilized to investigate the turbulent characteristics and structural deformation of an intact silicone aortic root model under different flow inputs. Particle image velocimetry and high-frequency pressure sensors were combined to gather the pulsatile flow field information. The results demonstrated the distributions and the variations of the jet flow structures at different phases of a cardiac cycle. High turbulence kinetic energy was observed after the peak systole phase when the flow started to decelerate. Deformations of the aortic root upstream and downstream of the valve leaflets under normal boundary conditions were summarized and found to be comparable to results from clinical studies. The cardiac output plays an important role in determining the strength of hemodynamic and structural responses. A reduction in cardiac outputs resulted in a lower post-systole turbulence, smaller circumferential deformation, a smaller geometric orifice area, and a shortened valve-opening period.
机译:由于高度脉动的流动条件,顺应的壁边界以及主动脉根部的复杂几何形状,天然主动脉瓣的流体动力学非常复杂。在本研究中,构建了脉动流动模拟器,并利用该模拟器来研究完整硅胶主动脉根模型在不同流量输入下的湍流特性和结构变形。粒子图像测速仪和高频压力传感器相结合,以收集脉动流场信息。结果表明在心动周期的不同阶段喷射流结构的分布和变化。在峰值收缩期之后,当流量开始减速时,观察到了高湍流动能。总结了正常边界条件下瓣叶的主动脉根上游和下游的变形,发现与临床研究结果相当。心输出量在确定血流动力学和结构反应强度方面起着重要作用。心输出量的减少导致收缩期后湍流降低,周向变形变小,几何孔口面积变小以及瓣膜开放期缩短。

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