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确定血流会聚区几何形状的实验研究。激光多普勒粒子跟踪和彩色多普勒成像。

Experimental studies to define the geometry of the flow convergence region. Laser Doppler particle tracking and color Doppler imaging.

作者信息

Shandas R, Gharib M, Liepman D, Shiota T, Sahn D J

机构信息

Department of Applied Mechanics/Engineering Sciences, University of California, San Diego, La Jolla.

出版信息

Echocardiography. 1992 Jan;9(1):43-50. doi: 10.1111/j.1540-8175.1992.tb00438.x.

Abstract

The color flow convergence method for calculating volume flow through regurgitant or forward flow restrictive orifices has gained significant interest and a number of in vitro studies have suggested that this method is accurate, even in pulsatile models. Clinical application of the method over a wide range of conditions will require improved understanding of the effect of orifice size, flow geometry, and flow rate on the flow convergence geometry. In this study, we performed laser particle tracking investigations to allow visualization of streamlines into stenotic orifices. These streamlines are theoretically perpendicular to the isovelocity surfaces used for flow convergence calculations. We compared those observations to color flow map, flow convergence images obtained with a Toshiba 160A for orifices 5 to 15 mm 2 with flow rates of 1.5 to 9.7 L/min. Our results show that for large orifices, low flow rates, and/or low pressure gradients, more oblique streamlines in the velocity of the orifice correspond to nonhemispherical, but more elliptical, flow convergence geometries. This can be corrected for by using lower Nyquist limits and calculating flow convergence at greater distances from the orifice. Under high flow and high gradient conditions, increased Nyquist limits and shorter aliasing radii are more suitable. Our studies yield insights into flow convergence geometry and yield corrective procedures to improve volume flow calculation.

摘要

用于计算通过反流或正向血流受限孔口的容积流量的彩色血流会聚法已引起广泛关注,并且多项体外研究表明,即使在脉动模型中,该方法也是准确的。在广泛的条件下临床应用该方法将需要更好地理解孔口大小、血流几何形状和流速对血流会聚几何形状的影响。在本研究中,我们进行了激光粒子跟踪研究,以实现对进入狭窄孔口的流线的可视化。这些流线理论上垂直于用于血流会聚计算的等速面。我们将这些观察结果与彩色血流图、使用东芝160A获得的血流会聚图像进行了比较,这些图像针对面积为5至15平方毫米的孔口,流速为1.5至9.7升/分钟。我们的结果表明,对于大孔口、低流速和/或低压梯度,孔口处速度中更倾斜的流线对应于非半球形但更椭圆形的血流会聚几何形状。这可以通过使用较低的奈奎斯特极限并在距孔口更远的距离处计算血流会聚来校正。在高流量和高梯度条件下,增加奈奎斯特极限和缩短混叠半径更合适。我们的研究深入了解了血流会聚几何形状,并产生了改进容积流量计算的校正程序。

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