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Determination of most appropriate Nyquist velocity for applying hemispherical flow convergence equation to calculate flow rate using the transorifice pressure gradient: digital computer analysis of Doppler color flow convergence region.

作者信息

Deng Y B, Wang X F, Wang J E, Li Z A, Shiota T, Sahn D J

机构信息

Echocardiographic laboratory, Xiehe Hospital, Tongji Medical University, Wuhan.

出版信息

J Tongji Med Univ. 1993;13(3):143-50. doi: 10.1007/BF02886505.

DOI:10.1007/BF02886505
PMID:8295261
Abstract

Nyquist velocity and transorifice pressure gradient dramatically influence color aliasing shape and accuracy of simple hemispherical flow convergence equation for calculation of flow rate. The present in vitro study was performed to determine whether the value of Nyquist velocity, at which the shape of proximal isovelocity surface is best fit for a given shape assumption in different orifice size, and the flow rate may be a determinable and orifice size independent function of clinically measurable peak velocity or transorifice pressure gradient. Steady flow was driven through circular discrete orifices with diameter of 3.8 mm, 5.5 mm and 10 mm and flow rate ranging from 2.88 L/min to 8.28 L/min. For every flow rate, Doppler color encoded M-mode images through the center of flow convergence region were transferred into the microcomputer in their original digital format. The continuous wave Doppler traces of maximal velocity through the orifice were performed for the calculation of pressure gradient. Direct numerical spatial velocity measure using color pixel intensity was obtained from the transferred color encoded M-mode images with computer software. The shape of isovelocity surface was determined by the ratio of calculated flow rate with hemispherical flow convergence equation to the actual flow rate. Both the flow rate and orifice size influence the position of the velocity profile curve. The shape of isovelocity surface is not constant and changes with the velocities used for the calculation of flow rates for a given flow rate and orifice size or pressure gradient and also changes with the flow rate or transorifice pressure gradients for a constant Nyquist velocity and orifice size.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

相似文献

1
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2
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本文引用的文献

1
Experimental studies to define the geometry of the flow convergence region. Laser Doppler particle tracking and color Doppler imaging.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。
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Non-invasive assessment of aortic stenosis by Doppler ultrasound.通过多普勒超声对主动脉瓣狭窄进行无创评估。
Br Heart J. 1980 Mar;43(3):284-92. doi: 10.1136/hrt.43.3.284.
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Color Doppler flow mapping in patients with coarctation of the aorta: new observations and improved evaluation with color flow diameter and proximal acceleration as predictors of severity.
Circulation. 1988 Apr;77(4):736-44. doi: 10.1161/01.cir.77.4.736.
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Color Doppler diagnosis of mechanical prosthetic mitral regurgitation: usefulness of the flow convergence region proximal to the regurgitant orifice.
Am Heart J. 1990 Nov;120(5):1137-42. doi: 10.1016/0002-8703(90)90127-j.
5
Doppler color flow "proximal isovelocity surface area" method for estimating volume flow rate: effects of orifice shape and machine factors.用多普勒彩色血流“近端等速表面积”法估计容积流量:孔口形状和机器因素的影响
J Am Coll Cardiol. 1991 Apr;17(5):1103-11. doi: 10.1016/0735-1097(91)90839-2.
6
A new method for quantification of regurgitant flow rate using color Doppler flow imaging of the flow convergence region proximal to a discrete orifice. An in vitro study.
Circulation. 1991 Feb;83(2):594-604. doi: 10.1161/01.cir.83.2.594.
7
A new method for quantitation of mitral regurgitation based on color flow Doppler imaging of flow convergence proximal to regurgitant orifice.一种基于反流口近端血流会聚的彩色多普勒成像定量二尖瓣反流的新方法。
Circulation. 1991 Oct;84(4):1481-9. doi: 10.1161/01.cir.84.4.1481.
8
A new method for noninvasive estimation of ventricular septal defect shunt flow by Doppler color flow mapping: imaging of the laminar flow convergence region on the left septal surface.一种通过多普勒彩色血流图无创估计室间隔缺损分流流量的新方法:左室间隔表面层流汇聚区成像。
J Am Coll Cardiol. 1991 Sep;18(3):824-32. doi: 10.1016/0735-1097(91)90808-m.