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United States Patent | 5,662,115 |
Torp , et al. | September 2, 1997 |
Method for determining the velocity-time spectrum of blood flow in a living body by means of an ultrasonic pulsed wave Doppler system, comprising: sequential transmission of pulsed ultrasonic waves and receiving a corresponding sequence of echo signals, sampling the received echo signals at one or more predetermined time delays after transmitted ultrasonic pulses, and processing said sequence of echo signal samples by frequency spectrum analysis to obtain a blood velocity spectrum comprising a number of velocity components within a range of expected blood velocity values, and repeating said processing a plurality of times to obtain a velocity-time spectrum for substantially real-time display. For each velocity component in said blood velocity spectrum the received echo signals are sampled with subsequent increase or decrease in said predetermined delay after pulse transmission according to the change in round-trip time of the ultrasonic pulses reflected from blood moving with a velocity corresponding to each said velocity component. The resulting sequence of signal samples is processed to obtain said velocity component.
Inventors: | Torp; Hans (Trondheim, NO); Kristoffersen; Kjell (Oslo, NO) |
Assignee: | Vingmed Sound A/S (Horten, NO) |
Appl. No.: | 479528 |
Filed: | June 7, 1995 |
Jun 14, 1994[NO] | 94.2222 |
Current U.S. Class: | 600/455 |
Intern'l Class: | A61B 008/06 |
Field of Search: | 128/661.08,661.09,661.1,662.04 |
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______________________________________ x(t,k) Complex demodulated Doppler signal, t elapsed time after pulse transmission k pulse number s(t,k) = re{x(t,k) exp i.omega..sub.0 t} is the corresponding RF- signal f.sub.0 Quadrature demodulation mixer frequency Typical values: 2 MHz-20 MHz .omega..sub.0 = 2.pi.f.sub.0, Quadrature demodulation angular mixer frequency T.sub.r Time increment in radial (depth range) direction. Typical values 1/8f.sub.0 < T.sub.r < 1/f.sub.0 T Pulse repetition time. Typical values: 10 .mu.s < T < 1000 .mu.s c speed of sound in blood, .about. 1570 m/sec V.sub.min, V.sub.max Blood velocity lower and upper bound to be measured (specified by the operator) V.sub.Nyquist Nyquist velocity, i.e. the blood velocity which gives a Doppler shift equal to half the sampling frequency (= 1/T) N Window length (in number of samples). Typical values 16 < N < 256. w(k) Smooth window function of length N (e.g. Hamming window, rectangular window), which is symmetric around k = 0 when .vertline.k.vertline. > N/2 M Number of spectral components to be calculated. ______________________________________