Title :
Three-dimensional Doppler velocimetry of flow jets
Author :
Fox, Martin D. ; Gardiner, W. Michael
Author_Institution :
Dept. of Electr. & Syst. Eng., Connecticut Univ., Storrs, CT, USA
Abstract :
A closed-form solution is derived of the Doppler equation for the magnitude and angle to the three-dimensional velocity vector. The resultant solution is more general than previous formulations and, since it is based on multiple conventional transmit-receive Doppler probes, it can be readily applied by adapting existing Doppler units. Turntable experiments demonstrated that the three-dimensional angle-independent theory correctly predicted velocity within average 32% over a 26. degrees -range of Doppler angles. Experiments with a flow phantom showed general agreement with the angle-independent theory in the more demanding setting of an actual flow stream. Experiments utilizing a jet stream which modeled the clinically important conditions that exist in stenotic vessels, valvular abnormalities, and septal defects within 1.4-3.8% of the actual velocity, over an 18 degrees range of Doppler angles.
Keywords :
Doppler effect; haemodynamics; jets; 3D Doppler velocimetry; blood flow; clinically important conditions; flow jets; stenotic vessels; valvular abnormalities; Computed tomography; Doppler shift; Equations; Geometry; Laser radar; Probes; Radio frequency; Radiology; Systems engineering and theory; Ultrasonic imaging; Models, Structural; Pulsatile Flow; Rheology; Ultrasonics;
Journal_Title :
Biomedical Engineering, IEEE Transactions on