Effect of the Polymerized Titanium Ferric Sulfate (PTFS) Coagulant on Sedimentation of Coal Slime Water
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation Method of PTFS
2.3. Experimental Procedure
- (1)
- The slime used to prepare coal slime water was sieved to determine the size composition of slime;
- (2)
- Coal slime water was prepared with a volume concentration of 20 g/L;
- (3)
- Flocculant and coagulant solutions were prepared. An anionic PAM (molecular weight: 3 million and 7 million) solution was prepared with the concentration of 0.1% by weight; polyaluminum chloride solution with the concentration of 5% by weight;
- (4)
- After repeated determination, the wavelength was determined to be 540 nm based on deionized (DI) water;
- (5)
- The transmittance of clear water after coal slime water sedimentation was taken as the evaluation index. The higher the transmittance, the better the settlement effect;
- (6)
- Comparison test of coal slime water treatment. The light transmittances of the test with no reagent, one reagent and different reagents were measured, and the test was observed;
- (7)
- The optimum ranges of dosage and the optimum molar ratio (Ti:Fe) of polymeric ferric titanium sulfate coagulant were studied;
- (8)
- The contact angle, surface energy and zeta potential of coal slime water without reagent, with polyaluminum chloride and with PTFS, were measured.
2.4. Method for Measuring Zeta Potential
2.5. Properties of Slime
2.6. Performance Index of PTFS
3. Experimental Results and Analysis
3.1. Single Agent Tests
3.2. Effect of the Combination of Polyaluminum Chloride, PTFS and PAM
4. Analysis of PTFS Condensation Mechanism Based on XDLVO Theory
4.1. XDLVO Theory
4.2. PTFS Coagulation Mechanism Analysis
5. Conclusions
- (1)
- The coagulant of PTFS has high coagulating speed and good settling effect on coal slime water, and the effect is more obvious when it is used with flocculant PAM. It can clear coal slime water in a short time, obtain clear water with high transmittance and achieve the purpose of solid–liquid separation. The effect is obviously better than that of polyaluminum chloride inorganic coagulant commonly used in coal preparation plants.
- (2)
- In order to obtain good coal slime water settlement effect, when PAM dosage is 0.66 × 10−10 mol, it should be used together with polymerized titanium iron sulfate with the molar ratio of 1:7, and the dosage of PTFS should not exceed 7.81 × 10−5 mol. When the dosage exceeds it, the transmittance of clear water decreases.
- (3)
- When titanium-iron = 1:7, the peak transmittance is relatively high, and the effect is slightly higher than other molar ratios.
- (4)
- Based on XDLVO theory, the coagulation mechanism of PTFS on coal slime water is explained reasonably, which is of great significance to understand the settlement of coal slime water.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
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Elements | SiO2 | Al2O3 | Fe2O3 | SO3 | CaO | MgO | Others |
---|---|---|---|---|---|---|---|
Content/% | 46.63 | 25.43 | 7.03 | 8.57 | 6.77 | 0.72 | 4.85 |
Particle Size (mm) | Weight (%) | Ash Content (%) |
---|---|---|
0.25–0.5 | 1.66 | 12.01 |
0.125–0.25 | 5.60 | 10.95 |
0.075–0.125 | 7.34 | 13.40 |
0.045–0.075 | 7.56 | 17.17 |
−0.045 | 77.84 | 39.16 |
total | 100.00 | 33.58 |
Performance | Density (g/cm3) | Basicity (%) | Viscosity (Pa·s) | Iron Content (%) | Insolubles (%) | pH |
---|---|---|---|---|---|---|
Index | 2.57 | 13 | 1.36 | >17.85 | <0.35 | 4–11 |
Group | Zeta Potential (mV) | Free Energy (mJ/m2) |
---|---|---|
Raw coal group | −71.34 | 61.07 |
with polyaluminum chloride | −64.60 | 57.62 |
with PTFS | −64.34 | 58.09 |
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Shi, C.; Guo, D.; Li, Y.; Zhang, Z.; Tang, L. Effect of the Polymerized Titanium Ferric Sulfate (PTFS) Coagulant on Sedimentation of Coal Slime Water. Minerals 2022, 12, 26. https://doi.org/10.3390/min12010026
Shi C, Guo D, Li Y, Zhang Z, Tang L. Effect of the Polymerized Titanium Ferric Sulfate (PTFS) Coagulant on Sedimentation of Coal Slime Water. Minerals. 2022; 12(1):26. https://doi.org/10.3390/min12010026
Chicago/Turabian StyleShi, Changsheng, De Guo, Yang Li, Zhenxing Zhang, and Ligang Tang. 2022. "Effect of the Polymerized Titanium Ferric Sulfate (PTFS) Coagulant on Sedimentation of Coal Slime Water" Minerals 12, no. 1: 26. https://doi.org/10.3390/min12010026
APA StyleShi, C., Guo, D., Li, Y., Zhang, Z., & Tang, L. (2022). Effect of the Polymerized Titanium Ferric Sulfate (PTFS) Coagulant on Sedimentation of Coal Slime Water. Minerals, 12(1), 26. https://doi.org/10.3390/min12010026