A series of experiments were performed in a mixing box in order: (1) to investigate the applicability of phase Doppler anemometry (PDA) to discriminate fluid and sediment particle sizes and velocities in sediment-laden turbulent flows; and (2) to relate the size and amount of sediment in suspension to the grid-generated turbulence. Natural impurities within the water provide excellent “seeding” to represent the fluid and can be easily discriminated from spherical glass beads (75-355 μm) used as sediment. Slight asphericity in the glass beads results in larger grain size ranges determined by PDA compared to the nominal sieved sizes. The mean, root-mean-square and skewness of the vertical fluid velocities increase at higher grid oscillation frequencies but decrease with distance from the grid. Similarly, the size and amount of suspended sediment increase with grid oscillation frequency and decrease with distance from the grid. The suspension of sediment is shown to be dependent on the magnitude and anisotropy of the fluctuating vertical component of velocity. Phase Doppler anemometry offers a unique methodology to investigate the complex links between the transport of sediment and the turbulent flow field.

1.
Allen, J. R. L., 1985, Principles of Physical Sedimentology, Allen and Unwin, London.
2.
Bachalo
W. D.
,
1994
, “
Experimental Methods in Multiphase Flows
,”
International Journal of Multiphase Flow
, Vol.
20
, Suppl., pp.
261
295
.
3.
Bachalo
W. D.
, and
Houser
M. J.
,
1984
, “
Phase/Doppler Spray Analyzer for Simultaneous Measurements of Drop Size and Velocity Distributions
,”
Optical Engineering
, Vol.
23
, pp.
583
590
.
4.
Bagnold, R. A., 1966, “An Approach to the Sediment Transport Problem from General Physics,” United States Geological Survey Professional Paper 422-I.
5.
Bagnold
R. A.
,
1978
, “
Sediment Transport by Wind and Water
,”
Nordic Hydrology
, Vol.
10
, pp.
309
322
.
6.
Buchhave, P., 1987, “A New Instrument for the Simultaneous Measurement of Size and Velocity of Spherical Particles Based on the Laser Doppler Method,” Particulate and Multiphase Processes, Vol. 2: Contamination Analysis and Control, T. Ariman and T. N. Veziroglu, eds., Hemisphere Publ., New York, pp. 55–67.
7.
Cioffi
F.
, and
Gallerano
F.
,
1991
, “
Velocity and Concentration Profiles of Solid Particles in a Channel with Movable and Erodible Bed
,”
Journal of Hydraulic Research
, Vol.
29
, pp.
387
401
.
8.
Coleman
N. L.
,
1981
, “
Velocity Profiles with Suspended Sediment
,”
Journal of Hydraulic Research
, Vol.
19
, pp.
211
229
.
9.
Dietrich
W. E.
,
1982
, “
Settling Velocities of Natural Particles
,”
Water Resources Research
, Vol.
18
, pp.
1615
1626
.
10.
Fernando
H. J. S.
,
1991
, “
Turbulent Mixing in Stratified Fluids
,”
Annual Review of Fluid Mechanics
, Vol.
23
, pp.
455
493
.
11.
Gould
R. D.
, and
Loseke
K. W.
,
1993
, “
A Comparison of Four Velocity Bias Correction Techniques in Laser Doppler Velocimetry
,”
ASME JOURNAL OF FLUIDS ENGINEERING
, Vol.
115
, pp.
508
514
.
12.
Gust
G.
,
1984
, “
Velocity Profiles with Suspended Sediment: Discussion
,”
Journal of Hydraulic Research
, Vol.
22
, pp.
263
290
.
13.
Hardalupas, Y., Taylor, A. M. K. P., and Whitelaw, J. H., 1988, “Measurements in Heavily-Laden Dusty Jets with Phase-Doppler Anemometry,” Transport Phenomena in Turbulent Flows: Theory, Experiment and Numerical Simulation, M. Hirata and N. Kasagi, eds., Hemisphere Publ., New York, pp. 821–835.
14.
Huppert
H. E.
,
Turner
J. S.
, and
Hallworth
M. A.
,
1993
, “
Sedimentation and Mixing of a Turbulent Fluid Suspension: A Laboratory Study
,”
Earth and Planetary Science Letters
, Vol.
114
, pp.
259
267
.
15.
Leeder
M. R.
,
1983
, “
On the Dynamics of Sediment Suspension by Residual Reynolds Stresses—Confirmation of Bagnold’s Theory
,”
Sedimentology
, Vol.
30
, pp.
485
491
.
16.
McDougall
T. J.
,
1979
, “
Measurements of Turbulence in a Zero-Mean-Shear Mixed Layer
,”
Journal of Fluid Mechanics
, Vol.
94
, pp.
409
431
.
17.
Noh
Y.
, and
Fernando
H. J. S.
,
1991
, “
Dispersion of Suspended Particles in Turbulent Flow
,”
Physics of Fluids A
, Vol.
3
, pp.
1730
1740
.
18.
Nokes
R. I.
,
1988
, “
On the Entrainment Rate Across a Density Interface
,”
Journal of Fluid Mechanics
, Vol.
188
, pp.
185
204
.
19.
Parker
G.
, and
Coleman
N. L.
,
1986
, “
Simple Model of Sediment-Laden Flows
,”
Journal of Hydraulic Engineering
, Vol.
112
, pp.
356
375
.
20.
Saffman, M., Buchhave, P., and Tanger, H., 1984, “Simultaneous Measurement of Size, Concentration and Velocity of Spherical Particles by a Laser Doppler Method,” Proceedings 2nd International Symposium on Applications of Laser Anemometry to Fluid Mechanics, Lisbon.
21.
Saffman, M., Fraidl, G. K., and Wigley, G., 1988, “Application of Phase and Laser Doppler Anemometry to the Measurement of Droplet Size and Velocity in Gasoline and Diesel Fuel Injection Systems,” Proceedings 4th International Symposium on Applications of Laser Anemometry to Fluid Mechanics, Lisbon.
22.
Tanger
H.
, and
Weitendorf
E. A.
,
1992
, “
Applicability Tests for the Phase Doppler Anemometer for Cavitation Nuclei Measurements
,”
ASME JOURNAL OF FLUIDS ENGINEERING
, Vol.
114
, pp.
443
449
.
23.
Thompson
S. M.
, and
Turner
J. S.
,
1975
, “
Mixing Across an Interface due to Turbulence Generated by an Oscillating Grid
,”
Journal of Fluid Mechanics
, Vol.
67
, pp.
349
368
.
24.
Turner
J. S.
,
1968
, “
The Influence of Molecular Diffusivity on Turbulent Entrainment Across a Density Interface
,”
Journal of Fluid Mechanics
, Vol.
33
, pp.
639
656
.
25.
Turner
J. S.
,
1986
, “
Turbulent Entrainment: The Development of the Entrainment Assumption, and its Application to Geophysical Flows
,”
Journal of Fluid Mechanics
, Vol.
173
, pp.
431
471
.
26.
Wei
T.
, and
Willmarth
W. W.
,
1991
, “
Examination of V-Velocity Fluctuations in a Turbulent Channel Flow in the Context of Sediment Transport
,”
Journal of Fluid Mechanics
, Vol.
223
, pp.
241
252
.
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