The flow of Newtonian liquids through a pipe system comprising of a series of abrupt expansions and contractions has been studied using several magnetic resonance imaging (MRI) techniques, and also by computational fluid dynamics. Agreement between those results validates the assumptions inherent to the computational calculation and gives confidence to extend the work to more complex geometries and more complex fluids, wherein the advantages of MRI (utility in opaque fluids and noninvasiveness) are unique. The fluid in the expansion-contraction system exhibits a broad distribution of velocities and, therefore, presents peculiar challenges to the measurement technique. The MRI protocols employed were a two-dimensional tagging technique, for rapid flow field visualisation, and three-dimensional echo-planar and gradient-echo techniques, for flow field quantification (velocimetry). The Computational work was performed using the FIDAP package to solve the Navier-Stokes equations. The particular choice of parameters for both MRI and computational fluid dynamics, which affect the results and their agreement, have been addressed.

1.
Agemura
C. K.
,
Kauten
R. J.
, and
McCarthy
K. L.
,
1995
, “
Flow Fields in Straight and Tapered Screw Extruders Using Magnetic Resonance Imaging
,”
Journal of Food Engineering
, Vol.
25
, pp.
55
72
.
2.
Axel
L.
, and
Dougherty
L.
,
1989
, “
MR imaging of Motion with Spatial Modulation of Magnetisation
,”
Radiology
, Vol.
171
, p.
841
841
.
3.
Boesiger
P.
,
Maier
S. E.
,
Kecheng
L.
,
Scheidegger
M. B.
, and
Meier
D.
,
1992
, “
Visualization and Quantification of the Human Blood Flow by Magnetic Resonance Imaging
,”
Journal of Biomechanics
, Vol.
25
(
1
), pp.
55
67
.
4.
Burden, R. L. and Faires, J. D., 1995, Numerical Analysis, Prindle, Weber and Schmidt, third edition.
5.
Callaghan, P. T., 1991, Principles of Nuclear Magnetic Resonance Microscopy, Chapter 6, pp. 339–340, Oxford University Press, Oxford, UK.
6.
Caprihan
A.
, and
Fukushima
E.
,
1990
, “
Flow Measurements by NMR
,”
Physics Reports
, Vol.
198
(
4
), pp.
196
235
.
7.
Carpenter
T. A.
,
Jezzard
P.
, and
Hall
L. D.
,
1989
, “
Proton Magnetic Resonance Imaging of Solid Polymers using Instrumentation Designed for the Liquid-State
,”
Journal of Magnetic Resonance
, Vol.
84
, pp.
384
387
.
8.
Derbyshire, J. A., 1995, “Echo Planar Anemometry using Conventional Magnetic Resonance Imaging Hardware,” PhD thesis. University of Cambridge.
9.
Derbyshire
J. A.
,
Gibbs
S. J.
,
Carpenter
T. A.
, and
Hall
L. D.
,
1994
, “
Rapid Three-Dimensional Velocimetry by Nuclear Magnetic Resonance Imaging
,”
AIChE Journal
, Vol.
40
(
8
), pp.
1404
1407
.
10.
Dumoulin
C. L.
,
Souza
S. P.
, and
Hart
H. R.
,
1987
, “
Rapid Scan Magnetic Resonance Angiography
,”
Magnetic Resonance in Medicine
, Vol.
5
(
3
), pp.
238
245
.
11.
Edelstein
W. A.
,
Hutchinson
J. M. S.
,
Johnson
G.
, and
Redpath
T.
,
1980
, “
Spin Warp NMR Imaging and Applications to Human Whole-Body Imaging
,”
Physics in Medicine and Biology
, Vol.
25
, pp.
751
756
.
12.
Ernst, R. R., Bodenhausen, G., and Wokaun, A., 1987, Principles of Nuclear Magnetic Resonance in One and Two Dimensions, Chapter 4, Oxford University Press, Oxford, UK, 1 edition.
13.
Fischer
S. E.
,
McKinnon
G. K.
,
Maier
S. E.
, and
Boesiger
P.
,
1993
, “
Improved Myocardial Tagging Contrast
,”
Magnetic Resonance in Medicine
, Vol.
30
, pp.
191
200
.
14.
Fukuda
K.
,
Inouye
A.
,
Kawabe
Y.
, and
Hirai
A.
,
1985
, “
Transition from Laminar to Turbulent Flow of Water in a Pipe Measured by a Pulsed NMR Method
,”
Journal of the Physical Society of Japan
, Vol.
54
(
12
), pp.
4555
4560
.
15.
Gatenby
J. C.
,
McCauley
T. R.
, and
Gore
J. C.
,
1993
, “
Mechanisms of Signal Loss in Magnetic Resonance Imaging of Stenoses
,”
Medical Physics
, Vol.
20
(
4
), pp.
1049
1057
.
16.
Gladden, L. F., 1994, “Industrial Applications of NMR Imaging,” Process Tomography’94, Proceedings of ECAPT’94 (Brite-Euram Conference on Process Tomography), pp. 466–477.
17.
Guo
Q.
,
Kashmar
G.
, and
Nalcioglu
O.
,
1991
, “
NMR Angiography with Enhanced Quasi-Half-Echo Scanning
,”
Magnetic Resonance Imaging
, Vol.
9
, pp.
129
139
.
18.
Hahn
E. L.
,
1950
, “
Spin Echoes
,”
Physical Review
, Vol.
80
, pp.
580
594
.
19.
Hall
L. D.
, and
Carpenter
T. A.
,
1992
, “
Magnetic Resonance Imaging: A New Window into Industrial Processing
,”
Magnetic Resonance Imaging
, Vol.
10
, pp.
713
721
.
20.
Hayes
C. E.
,
Edelstein
W. A.
,
Schenk
J. F.
,
Mueller
O. M.
, and
Eash
M.
,
1985
, “
An Efficient, Highly Homogeneous Radiofrequency Coil for Whole-Body NMR Imaging at 1.5 T
,”
Journal of Magnetic Resonance
, Vol.
63
, pp.
622
628
.
21.
Lee
H. K.
,
Nalcioglu
O.
, and
Moran
P. R.
,
1991
, “
Spatially Resolved Flow Velocity Measurements and Projection Angiography by Adiabatic Passage
,”
Magnetic Resonance Imaging
, Vol.
9
, pp.
115
127
.
22.
Maier
S. E.
,
Meier
D.
,
Boesiger
P.
,
Moser
U. T.
, and
Vieli
A.
,
1989
, “
Human Abdominal Aorta: Comparitive Measurements of Blood Flow with MR Imaging and Multigated Doppler Ultrasound
,”
Radiology
, Vol.
171
, pp.
487
492
.
23.
Mansfield
P.
,
1977
, “
Multi-Planar Image Formation Using NMR Spin Echoes
,”
Journal of Physics C
, Vol.
10
, p.
L55
L55
.
24.
Moore
J. E.
,
Maier
S. E.
,
Ku
D. N.
, and
Boesiger
P.
,
1994
, “
Hemodynamics in the Abdominal Aorta: a Comparison of in Vitro and in Vivo Measurements
,”
Journal of Applied Physiology
, Vol.
76
(
4
), pp.
1520
1527
.
25.
Morris
G. A.
, and
Freeman
R.
,
1978
, “
Selective excitation in Fourier Transform Nuclear Magnetic Resonance
,”
Journal of Magnetic Resonance
, Vol.
29
, p.
433
433
.
26.
Mosher
T. J.
, and
Smith
M. B.
,
1990
, “
A DANTE Tagging Sequence for the Evaluation of Translational Sample Motion
,”
Magnetic Resonance in Medicine
, Vol.
15
, p.
334
334
.
27.
Norrish, R. S., 1967, “Selected Tables of Physical Properties of Sugar Solutions,” Scientific and Technical Survey 51, The British Food Manufacturing Industries Research Association.
28.
Pope
J. M.
, and
Yao
S.
,
1993
, “
Quantitative NMR imaging of Flow
,”
Concepts in Magnetic Resonance
, Vol.
5
, pp.
281
302
.
29.
Roberts
T. P. L.
,
Carpenter
T. A.
, and
Hall
L. D.
,
1990
, “
Design and Application of Prefocused Pulses by Simulated Annealing
,”
Journal of Magnetic Resonance
, Vol.
29
(
3
), pp.
595
604
.
30.
Roberts
T. P. L.
,
Carpenter
T. A.
, and
Hall
L. D.
,
1993
, “
A Simple Method for the Construction of 180° Refocusing Radiofrequency Pulses for Use in Magnetic Resonance Imaging
,”
Journal of Magnetic Resonance
, Series B, Vol.
101
(
1
), pp.
78
82
.
31.
Sinton
S. W.
, and
Chow
A. W.
,
1991
, “
NMR Imaging of Fluids and Solid Suspensions in Poiseuille Flow
,”
Journal of Rheology
, Vol.
35
(
5
), pp.
735
772
.
32.
Stehling
M. K.
,
Turner
R.
, and
Mansfield
P.
,
1991
, “
Echo-Planar Imaging: Magnetic Resonance Imaging in a Fraction of a Second
,”
Science
, Vol.
254
, p.
43
43
.
33.
Stejskal
E. O.
, and
Tanner
J. C.
,
1965
, “
Spin Diffusion Measurements: Spin Echoes in the Presence of a Time-Dependent Field Gradient
,”
Journal of Chemical Physics
, Vol.
42
, p.
288
288
.
34.
Sun
Y.
,
Hearshen
D. O.
,
Rankin
G. W.
, and
Haggar
A. M.
,
1992
, “
Comparison of Velocity-Encoded MR Imaging and Fluid Dynamic Modelling of Steady and Disturbed Flow
,”
Journal of Magnetic Resonance Imaging
, Vol.
2
(
4
), pp.
443
452
.
35.
Vu
A. T.
,
Lee
H. K.
,
Moran
P. R.
, and
Nalcioglu
O.
,
1993
, “
Flow Field Mapping Multi-Zone Adiabatic Passage Excitation
,”
Magnetic Resonance Imaging
, Vol.
11
, pp.
1129
1137
.
36.
Xing
D.
,
Gibbs
S. J.
,
Derbyshire
J. A.
,
Carpenter
T. A.
, and
Hall
L. D.
,
1995
, “
Bayesian Analysis for Quantitative NMR Flow and Diffusion Imaging
,”
Journal of Magnetic Resonance
, Series B, Vol.
106
, pp.
1
9
.
This content is only available via PDF.
You do not currently have access to this content.