KINETICS OF AGGREGATE FORMATION IN RAPID MIX

被引:87
作者
WIESNER, MR
机构
[1] Department of Environmental Science and Engineering, Rice University, Houston, TX 77251
关键词
FRACTAL DIMENSION; FLOCCULATION; PARTICLE AGGREGATION; RAPID MIXING; FERRIC HYDROXIDE; WATER TREATMENT; FLOC POROSITY;
D O I
10.1016/0043-1354(92)90035-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The growth of porous aggregates during initial mixing is investigated in a series of numerical simulations. Hydrodynamic radii of aggregates composed of i primary particles are used to calculate collision rate constants as a function of fractal dimension, D, and aggregation number, i. D is assumed to be independent of aggregate size. The rate of floc volume formation increases by several orders of magnitude as the fractal dimension decreases from 3 to 2. Neglecting aggregate porosity is estimated to introduce an error of < 10% in calculating the collision efficiency factor from particle number measurements and a coalescing-sphere model for particle aggregation. For conditions approximating those in which ferric sulfate is added to a rapid mix basin, simulations with D = 2.5 produce a volume fraction of flocs larger than 1-mu-m that approximates the volume fraction greater than 1-mu-m measured using an electronic particle counter. A fractal dimension of 2.35 produces an aggregate volume distribution that most nearly approximates the volume distribution observed in jar tests with ferric sulfate. These values of D are within the range of values reported in the literature for larger ferric hydroxide flocs. Mixing conditions in most full scale installations are likely to favor the formation of aggregates of precipitated coagulant particles that are sufficiently large for breakup and aggregate restructing to control the size distribution of materials leaving the rapid mix basin.
引用
收藏
页码:379 / 387
页数:9
相关论文
共 38 条
[1]   FLOC BREAKAGE - THE DYNAMIC-RESPONSE OF THE PARTICLE-SIZE DISTRIBUTION IN A FLOCCULATED SUSPENSION TO A STEP CHANGE IN TURBULENT ENERGY-DISSIPATION [J].
AKERS, RJ ;
RUSHTON, AG ;
STENHOUSE, JIT .
CHEMICAL ENGINEERING SCIENCE, 1987, 42 (04) :787-798
[2]   COLLOIDAL STABILITY OF PARTICLES IN LAKES - MEASUREMENT AND SIGNIFICANCE [J].
ALI, W ;
OMELIA, CR ;
EDZWALD, JK .
WATER SCIENCE AND TECHNOLOGY, 1985, 17 (4-5) :701-712
[3]   SMALL-ANGLE X-RAY-SCATTERING OF 2 ALUMINUM HYDROXIDE COLLOIDAL AGGREGATES AL(OH)X, WITH X = 2.5 AND 3 - STRUCTURE AND POWER-LAW CORRELATION OF CLUSTER AGGREGATES [J].
AXELOS, M ;
TCHOUBAR, D ;
BOTTERO, JY ;
FIESSINGER, F .
JOURNAL DE PHYSIQUE, 1985, 46 (09) :1587-1593
[4]   FINITE SIZE EFFECTS IN CLUSTER-CLUSTER AGGREGATION [J].
BALL, RC ;
JULLIEN, R .
JOURNAL DE PHYSIQUE LETTRES, 1984, 45 (21) :1031-1035
[5]   INVESTIGATION OF THE HYDROLYSIS OF AQUEOUS-SOLUTIONS OF ALUMINUM-CHLORIDE .2. NATURE AND STRUCTURE BY SMALL-ANGLE X-RAY-SCATTERING [J].
BOTTERO, JY ;
TCHOUBAR, D ;
CASES, JM ;
FLESSINGER, F .
JOURNAL OF PHYSICAL CHEMISTRY, 1982, 86 (18) :3667-3673
[6]   IS VELOCITY-GRADIENT A VALID TURBULENT FLOCCULATION PARAMETER [J].
CLEASBY, JL .
JOURNAL OF ENVIRONMENTAL ENGINEERING-ASCE, 1984, 110 (05) :875-897
[7]  
Cohen R.D., 1990, J SURFACE SCI TECHNO, V6, P25
[8]   HYDROLYSIS-PRECIPITATION STUDIES OF IRON SOLUTIONS .2. AGING STUDIES AND MODEL FOR PRECIPITATION FROM FE(III) NITRATE SOLUTIONS [J].
DOUSMA, J ;
DEBRUYN, PL .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1978, 64 (01) :154-170
[9]   STRUCTURE OF HYDROXIDE FLOCS [J].
FRANCOIS, RJ ;
VANHAUTE, AA .
WATER RESEARCH, 1985, 19 (10) :1249-1254
[10]  
Friedlander SK, 1977, SMOKE DUST HAZE