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首页> 外文期刊>Cardiovascular engineering and technology >Effects of Normal Variation in the Rotational Position of the Aortic Root on Hemodynamics and Tissue Biomechanics of the Thoracic Aorta
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Effects of Normal Variation in the Rotational Position of the Aortic Root on Hemodynamics and Tissue Biomechanics of the Thoracic Aorta

机译:正常变化在主动脉根系旋转位置对胸主动脉血流动力学和组织生物力学的影响

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Purpose Variation in the rotational position of the aortic root relative to the left ventricle is present in normal trileaflet aortic valves. Its impact on the resulting fluid mechanics of blood flow in the thoracic aorta and structural mechanics in the aortic wall are unknown. We aimed to determine the regional hemodynamic and biomechanical differences in different rotational positions of the normal aortic root (clockwise, central, and counterclockwise positions). Method Cardiac magnetic resonance imaging (CMR) data was acquired from a normal pediatric patient. These were used for reconstruction of the aortic valve and thoracic aorta 3D model. Fluid-structure interaction (FSI) simulations were employed to study the influence of the root rotation with a central position as compared to observed extreme variations. Patient-specific phase-encoding CMR data were used to assess the validity of computed blood flow. The 3D FSI model was coupled with Windkessel boundary conditions that were tuned for physiological pressures. A grid velocity function was adopted for the valve motion during the systolic period. Results The largest wall shear stress level is detected in the clockwise positioned aortic root at the sinutubular junction. Two counter-rotating vortex cores are formed within the aortic root of both the central and extreme root configurations, however, in the clockwise root the vortex system becomes more symmetric. This also coincides with more entrainment of the valve jet and more turbulence production along the shear layer. Conclusion A clockwise rotational position of the aortic root imparts an increased wall shear stress at the sinutubular junction and proximal ascending aorta in comparison to other root rotation positions. This may pose increased risk for dilation of the sinutubular junction and ascending aorta in the patient with a clockwise positioned aortic root compared to other normal positional configurations.
机译:目的在正常的三叶子主动脉瓣膜中存在主动脉根部相对于左心室的旋转位置的变化。它对主动脉壁中的胸主动脉和结构力学中所产生的血流流体力学的影响是未知的。我们旨在确定普通主动脉根(顺时针,中央和逆时针位置)不同旋转位置的区域血流动力学和生物力学差异。方法从正常的小儿患者获得心脏磁共振成像(CMR)数据。这些用于重建主动脉瓣和胸主动脉3D模型。与观察到的极端变化相比,采用流体结构相互作用(FSI)模拟来研究根部旋转与中心位置的影响。患者特异性相位编码的CMR数据用于评估计算血流的有效性。 3D FSI模型与挡风玻璃边界条件相结合,被调整为生理压力。在收缩期期间采用了阀门运动采用了网格速度功能。结果在SINURUMULACLENCTION的顺时针定位主动脉根中检测到最大壁剪切应力水平。在中央和极端根部配置的主动脉根部内形成两个反向旋转涡旋芯,然而,在顺时针根目录中,涡流系统变得更加对称。这也与沿着剪切层沿着阀门射流和更多湍流产生的夹带相吻合。结论主动脉根的顺时针旋转位置赋予正弦接合处的壁剪切应力增加,与其他根旋转位置相比,近侧升压主动脉。这可能会增加患者在患者中升高的患者中升高的风险增加,并且与其他正常的位置配置相比,顺时针定位的主动脉根。

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