A new method for estimation of velocity vectors

被引:366
作者
Jensen, JA [1 ]
Munk, P [1 ]
机构
[1] Tech Univ Denmark, Dept Informat Technol, DK-2800 Lyngby, Denmark
关键词
D O I
10.1109/58.677749
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The paper describes a new method(1) for determining the velocity vector of a remotely sensed object using either sound or electromagnetic radiation. The movement of the object is determined from a field with spatial oscillations in both the axial direction of the transducer and in one or two directions transverse to the axial direction. By using a number of pulse emissions, the inter-pulse movement can be estimated and the velocity found from the estimated movement and the time between pulses. The method is based on the principle of using transverse spatial modulation for making the received signal influenced by transverse motion. Such a transverse modulation can be generated by using apodization on individual transducer array elements together with a special focusing scheme. A method for making such a field is presented along with a suitable two-dimensional velocity estimator. An implementation usable in medical ultrasound is described, and simulated results are presented. Simulation results for a flow of 1 m/s in a tube rotated in the image plane at specific angles (0, 15, 35, 55, 75, and 90 degrees) are made and characterized by the estimated mean value, estimated angle, and the standard deviation in the lateral and longitudinal direction. The average performance of the estimates for all angles is: mean velocity 0.99 m/s, longitudinal S.D. 0.015 m/s, and lateral S.D. 0.196 m/s. For how parallel to the transducer the results are: mean velocity 0.95 m/s, angle 0.1 degrees, longitudinal S.D. 0.020 m/s, and lateral S.D. 0.172 m/s.
引用
收藏
页码:837 / 851
页数:15
相关论文
共 27 条
[1]   PULSED ULTRASONIC DOPPLER BLOOD-FLOW SENSING [J].
BAKER, DW .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1970, SU17 (03) :170-&
[2]  
Bonnefous O., 1986, IEEE 1986 Ultrasonics Symposium Proceedings (Cat. No.86CH2375-4), P855
[3]   GENERATION OF A NONDIFFRACTING BEAM WITH FREQUENCY-INDEPENDENT BEAMWIDTH [J].
CAMPBELL, JA ;
SOLOWAY, S .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1990, 88 (05) :2467-2477
[4]  
DOTTI D, 1976, ENERG NUCL-MILAN, V23, P571
[5]   DIFFRACTION-FREE BEAMS [J].
DURNIN, J ;
MICELI, JJ ;
EBERLY, JH .
PHYSICAL REVIEW LETTERS, 1987, 58 (15) :1499-1501
[6]   EXACT-SOLUTIONS FOR NONDIFFRACTING BEAMS .1. THE SCALAR THEORY [J].
DURNIN, J .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1987, 4 (04) :651-654
[7]   MULTIPLE CROSSED-BEAM ULTRASOUND DOPPLER VELOCIMETRY [J].
FOX, MD .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1978, 25 (05) :281-286
[8]   ACOUSTIC FIELD OF A PULSED CIRCULAR PISTON [J].
FREEDMAN, A .
JOURNAL OF SOUND AND VIBRATION, 1994, 170 (04) :495-519
[9]  
Goodman J.W., 1996, Introduction to Fourier Optics
[10]   TECHNIQUE FOR NONUNIFORM POLING OF PIEZOELECTRIC ELEMENT AND FABRICATION OF GAUSSIAN TRANSDUCERS [J].
HSU, DK ;
MARGETAN, FJ ;
HASSELBUSCH, MD ;
WORMLEY, SJ ;
HUGHES, MS ;
THOMPSON, DO .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1990, 37 (05) :404-410