A new Doppler echocardiographically based method has been developed to quantify volume flow rate by surface integration of velocity vectors (SIVV). Electrocardiographic-gated color Doppler images acquired in two orthogonal planes were used to estimate volume flow rate through a bowl-shaped surface at a given time and distance from the probe. To provide in vitro validation, the method was tested in a hydraulic model representing a pulsatile flow system with a restrictive orifice. Accurate estimates of stroke volume (+/- 10%) were obtained in a window between 1.2 and 1.6 cm proximal to the orifice, just before the region of prestenotic acceleration. By use of the Bernoulli's equation, the estimated flows were used to generate pressure gradient waveforms across the orifice, which agreed well with the measured flows. To demonstrate in vivo applicability, the SIVV method was applied retrospectively to the determination of stroke volume and subaortic flow from the apical three-chamber and five-chamber views in two patients. Stroke volume estimates along the left ventricular outflow tract showed a characteristic similar to that in the in vitro study and agreed well with those obtained by the Fick oxygen method. The region where accurate measurements can be obtained is affected by instrumental factors including Nyquist velocity limit, wall motion filter cutoff, and color flow sector angle. The SIVV principle should be useful for quantitative assessment of the severity of valvular abnormalities and noninvasive measurement of pulsatile volume flows in general.

译文

已经开发了一种新的基于多普勒超声心动图的方法,用于通过速度矢量的表面积分 (SIVV) 来量化体积流速。在两个正交平面中采集的心电图门控彩色多普勒图像用于估计在给定时间和距探头的距离下通过碗状表面的体积流速。为了提供体外验证,该方法在代表具有限制性孔口的脉动流系统的水力模型中进行了测试。在狭窄前加速区域之前,在靠近孔口的1.2和1.6厘米之间的窗口中获得了中风量的准确估计 (/- 10%)。通过使用伯努利方程,估计的流量用于生成整个孔口的压力梯度波形,该波形与测得的流量非常吻合。为了证明在体内的适用性,将SIVV方法回顾性地用于从两名患者的心尖三腔和五腔视图确定中风量和主动脉下血流。沿左心室流出道的每搏输出量估计值显示出与体外研究相似的特征,并且与通过Fick氧气方法获得的结果非常吻合。可以获得精确测量的区域受仪器因素的影响,包括奈奎斯特速度极限,壁运动滤镜截止和彩色流扇形角。SIVV原理通常可用于定量评估瓣膜异常的严重程度和无创测量脉动体积流量。

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