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最大多普勒谱速度衍生的血流速度和容积流量波形中速度剖面偏斜的影响。

Effect of velocity profile skewing on blood velocity and volume flow waveforms derived from maximum Doppler spectral velocity.

机构信息

Biomedical Simulation Laboratory, Department of Mechanical and Industrial Engineering, University of Toronto, Canada.

出版信息

Ultrasound Med Biol. 2013 May;39(5):870-81. doi: 10.1016/j.ultrasmedbio.2012.11.006. Epub 2013 Feb 27.

Abstract

Given evidence that fully developed axisymmetric flow may be the exception rather than the rule, even in nominally straight arteries, maximum velocity (V(max)) can lie outside the Doppler sample volume (SV). The link between V(max) and derived quantities, such as volume flow (Q), may therefore be more complex than commonly thought. We performed idealized virtual Doppler ultrasound on data from image-based computational fluid dynamics (CFD) models of the normal human carotid artery and investigated how velocity profile skewing and choice of sample volume affected V(max) waveforms and derived Q variables, considering common assumptions about velocity profile shape (i.e., Poiseuille or Womersley). Severe velocity profile skewing caused substantial errors in V(max) waveforms when using a small, centered SV, although peak V(max) was reliably detected; errors with a long SV covering the vessel diameter were orientation dependent but lower overall. Cycle-averaged Q calculated from V(max) was typically within ±15%, although substantial skewing and use of a small SV caused 10%-25% underestimation. Peak Q derived from Womersley's theory was generally accurate to within ±10%. V(max) pulsatility and resistance indexes differed from Q-based values, although the Q-based resistance index could be predicted reliably. Skewing introduced significant error into V(max)-derived Q waveforms, particularly during mid-to-late systole. Our findings suggest that errors in the V(max) and Q waveforms related to velocity profile skewing and use of a small SV, or orientation-dependent errors for a long SV, could limit their use in wave analysis or for constructing characteristic or patient-specific flow boundary conditions for model studies.

摘要

鉴于完全轴对称流动可能是例外而非规则的证据,即使在名义上直的动脉中,最大速度 (V(max)) 也可能不在多普勒采样体积 (SV) 内。因此,V(max) 与衍生量(如体积流量 (Q))之间的关系可能比通常想象的更为复杂。我们对正常人类颈动脉的基于图像的计算流体动力学 (CFD) 模型数据进行了理想化的虚拟多普勒超声检查,并研究了速度剖面偏斜和采样体积选择如何影响 V(max) 波形和衍生的 Q 变量,同时考虑了速度剖面形状的常见假设(即泊肃叶或沃默斯利)。当使用小的、居中的 SV 时,严重的速度剖面偏斜会导致 V(max) 波形出现较大误差,尽管可以可靠地检测到峰值 V(max);使用覆盖血管直径的长 SV 时,误差具有方向依赖性,但总体较低。从 V(max) 计算的周期平均 Q 通常在±15% 以内,尽管较大的偏斜和使用小 SV 会导致 10%-25%的低估。从沃默斯利理论得出的峰值 Q 通常准确到±10%以内。V(max) 搏动指数和阻力指数与基于 Q 的值不同,尽管基于 Q 的阻力指数可以可靠地预测。偏斜会给 V(max) 衍生的 Q 波形带来显著误差,尤其是在收缩中期到晚期。我们的发现表明,与速度剖面偏斜和使用小 SV 相关的 V(max) 和 Q 波形误差,或长 SV 的方向依赖性误差,可能会限制它们在波分析中的使用,或限制它们在构建特征或患者特定的流动边界条件以用于模型研究。

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