Aggregation Mechanism of Particles: Effect of Ca2+ and Polyacrylamide on Coagulation and Flocculation of Coal Slime Water Containing Illite
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Instruments
2.2. Experimental Methods
2.2.1. Preparation of Coal Slime Water
2.2.2. Theoretical Calculation of Particle Aggregation
2.2.3. Coagulation and Flocculation-Sedimentation of Coal Slime Water
3. Results and Discussion
3.1. Interaction between Particles
3.2. Coagulation Sedimentation of Particles
3.3. Flocculation Sedimentation of Particles
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
A | Hamaker constant, A132 represents the effective Hamaker constant of the interaction between substance 1 and 2 in medium 3, A11 is the Hamaker constant for substance 1 in vacuum, so as A22. |
c | Concentration for amount of substance of ions, mol/L |
e | elementary charge, 1.602 × 10−19 C |
H | surface distance between particles |
h0 | relaxation length |
K | Boltzmann constant, 1.38 × 10−23 J/K |
NA | Avogadro’s number, 6.022 × 1023 |
R | particle radius |
r+ | surface energy electron acceptor component |
r− | surface energy electron donor component |
T | absolute temperature |
VH0 | interfacial polar interaction energy constant |
Z | ionic valence in solution |
θ | contact angle |
rd | surface energy dispersive component |
εα | absolute dielectric constant of dispersion medium, F/m, the absolute dielectric constant of water is 7.172 × 10−10 F/m. [28] |
κ−1 | length of Debye, m |
ψ | surface potential. It was replaced by zeta potential in this study |
ψ | surface potential. It was replaced by zeta potential in this study |
Subscripts | |
1,2 | particles can be coal or illite in the present work |
3 | disperse medium (water here) |
L | Liquid |
S | Solid |
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Equation No. | Formula | Literature |
---|---|---|
I | [16] | |
Ia | [16] | |
Ib | [16] | |
II | [17] | |
IIa | [17] | |
IIb | [17] | |
IIc | [17] | |
III | [18,19] | |
IIIa | [16] | |
IIIb | [16] |
Particle | Contact Angles, o | ||
---|---|---|---|
Water | Formaldehyde | Glycerol | |
Coal | 79.0 | 75.3 | 77.8 |
Illite | 25.5 | 20.6 | 17.5 |
Concentration of Calcium, mM/L | ζcoal, mV | ζillite, mV |
---|---|---|
0 | –19.33 | –21.93 |
0.1 | –14.98 | –13.32 |
10 | –6.41 | –7.91 |
Liquid | rL | rLd | rL+ | rL− |
---|---|---|---|---|
Water | 72.8 | 21.8 | 25.5 | 25.5 |
Glycerol | 64 | 34 | 4.92 | 57.4 |
Formaldehyde | 58 | 39 | 2.28 | 39.6 |
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Lin, Z.; Li, P.; Hou, D.; Kuang, Y.; Wang, G. Aggregation Mechanism of Particles: Effect of Ca2+ and Polyacrylamide on Coagulation and Flocculation of Coal Slime Water Containing Illite. Minerals 2017, 7, 30. https://doi.org/10.3390/min7020030
Lin Z, Li P, Hou D, Kuang Y, Wang G. Aggregation Mechanism of Particles: Effect of Ca2+ and Polyacrylamide on Coagulation and Flocculation of Coal Slime Water Containing Illite. Minerals. 2017; 7(2):30. https://doi.org/10.3390/min7020030
Chicago/Turabian StyleLin, Zhe, Panting Li, Dou Hou, Yali Kuang, and Guanghui Wang. 2017. "Aggregation Mechanism of Particles: Effect of Ca2+ and Polyacrylamide on Coagulation and Flocculation of Coal Slime Water Containing Illite" Minerals 7, no. 2: 30. https://doi.org/10.3390/min7020030
APA StyleLin, Z., Li, P., Hou, D., Kuang, Y., & Wang, G. (2017). Aggregation Mechanism of Particles: Effect of Ca2+ and Polyacrylamide on Coagulation and Flocculation of Coal Slime Water Containing Illite. Minerals, 7(2), 30. https://doi.org/10.3390/min7020030