Settling velocities of fractal aggregates

被引:288
作者
Johnson, CP [1 ]
Li, XY [1 ]
Logan, BE [1 ]
机构
[1] UNIV ARIZONA,DEPT ENVIRONM CHEM & ENGN,TUCSON,AZ 85721
关键词
D O I
10.1021/es950604g
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Aggregates generated in water and wastewater treatment systems and those found in natural systems are fractal and therefore have different scaling properties than assumed in settling velocity calculations using Stokes' law. In order to demonstrate that settling velocity models based on impermeable spheres do not accurately relate aggregate size, porosity and settling velocity for highly porous fractal aggregates, we generated fractal aggregates by coagulation of latex microspheres in paddle mixers and analyzed each aggregate individually for its size, porosity, and settling velocity. Settling velocities of these aggregates were on average 4-8.3 times higher than those predicted using either an impermeable sphere model (Stokes' law) or a permeable sphere model that specified aggregate permeability for a homogeneous distribution of particles within an aggregate. Fractal dimensions (D) derived from size-porosity relationships for the three batches of aggregates were 1.78 +/- 0.10, 2.19 +/- 0.12 and 2.25 +/- 0.10. These fractal dimensions were used to predict power law relationships between aggregate size and settling velocity based on Stokes' law. When it was assumed that the the drag coefficient, Co, was constant and fixed at its value of C-D = 24/Re for the creeping flow region (Re much less than 1), predicted slopes of size and settling velocity were in agreement with only the data sets where D > 2. As a result, when D < 2, aggregate porosities will be overestimated and fractal dimensions will be calculated incorrectly from settling velocity data and Stokes' law.
引用
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页码:1911 / 1918
页数:8
相关论文
共 31 条
[1]  
ADLER PM, 1981, J COLLOID INTERF SCI, V81, P531, DOI 10.1016/0021-9797(81)90434-3
[2]   INSITU SETTLING BEHAVIOR OF MARINE SNOW [J].
ALLDREDGE, AL ;
GOTSCHALK, C .
LIMNOLOGY AND OCEANOGRAPHY, 1988, 33 (03) :339-351
[3]  
Bird R.B., 2006, TRANSPORT PHENOMENA, Vsecond, DOI 10.1002/aic.690070245
[4]   FLUID-MECHANICS AND FRACTAL AGGREGATES [J].
CHELLAM, S ;
WIESNER, MR .
WATER RESEARCH, 1993, 27 (09) :1493-1496
[5]   CAN CHAETOGNATH FECAL PELLETS CONTRIBUTE SIGNIFICANTLY TO CARBON FLUX [J].
DILLING, L ;
ALLDREDGE, AL .
MARINE ECOLOGY PROGRESS SERIES, 1993, 92 (1-2) :51-58
[6]   ESTUARINE FLOCS - THEIR SIZE, SETTLING VELOCITY AND DENSITY [J].
GIBBS, RJ .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1985, 90 (NC2) :3249-3251
[7]   THE (RELATIVE) INSIGNIFICANCE OF G IN FLOCCULATION [J].
HAN, MY ;
LAWLER, DF .
JOURNAL AMERICAN WATER WORKS ASSOCIATION, 1992, 84 (10) :79-91
[8]  
HAPPEL J, 1965, LOW REYNOLDS NUMBER, P385
[9]  
HAWLEY N, 1982, J GEOPHYS RES-OCEANS, V87, P9489, DOI 10.1029/JC087iC12p09489
[10]   FRACTAL DIMENSIONS OF AGGREGATES DETERMINED FROM STEADY-STATE SIZE DISTRIBUTIONS [J].
JIANG, Q ;
LOGAN, BE .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1991, 25 (12) :2031-2038