What Affects Dewatering Performance of High Density Slurry?
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Equipment
2.3. Homogenization of FFT
2.4. Flocculation of FFT
2.5. Color and Clarity of Release Water
3. Results
3.1. Effect of Polymer Dosage
3.2. Effect of Mixing
3.3. Effect of Dilution
3.4. Effect of Clays
3.5. Effect of Water Chemistry
3.6. Other Effects
3.7. Example of Polymer Evaluation on FFT Treatment
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Representative Lab Variables | Field Reality |
---|---|---|
Type of high density slurry | Solids%, bitumen%, sand content, MBIa, and water chemistry | Only density can be measured. All other elements vary without control. |
Type of flocculant | Molecular weight, charge, and structure | Controlled variable, though degree of hydration may vary. |
Dosage of flocculant | Continuum from underdose to overdose | Since optimum dosage is determined by the widely varied feed properties, this is not easily controllable in the field. |
Premix | Energy into the high density slurry before flocculation: mixing speed and time | Function of FFTb flow rate and pipeline length. |
Flocculant injection | Rate of injection, location of injection, and mixing speed of high density slurry during injection (i.e., Relative energy of flocculant to high density slurry at injector) | Function of FFT flow rate, polymer flow rate, and injector design. |
Mixing | Mixing speed and time | Function of flow rate & transport distance. |
Geometry of mixer | Geometry of mixing blade and mixing beaker | Function of mixing vessel/pipeline length used. |
Sample | Solids Content (Weight %) | Bitumen Content (Weight %) | Water Content (Weight %) | MBI (mEq100 g) | Fines Content Passing 325 Mesh (Weight %) | pH | Electronic Conductivity µS/cm) | Sands to Fines Ratio (SFR) |
---|---|---|---|---|---|---|---|---|
FFT-1 | 32.15 | 2.15 | 65.70 | 10.4 | 91.7 | 7.8 | 2216 | 0.09 |
FFT-2 | 24.68 | 1.23 | 74.09 | 14.1 | 92.8 | 8.20 | 2900 | 0.08 |
FFT-3 | 39.44 | 1.33 | 59.23 | 8.1 | 88.0 | 7.92 | 1320 | 0.14 |
FFT-4 | 35.92 | 3.03 | 61.05 | 10.7 | 94.0 | 7.92 | 660 | 0.06 |
Diluted FFT-3 | 23.25 | 0.78 | 75.97 | 8.1 | 88.0 | 7.86 | 1074 | 0.14 |
Diluted FFT-4 | 23.10 | 1.95 | 74.95 | 10.7 | 94.0 | 7.80 | 947 | 0.06 |
Sample | Na+ | K+ | Ca2+ | Mg2+ | Cl− | HCO3− | SO42− | SAR |
---|---|---|---|---|---|---|---|---|
FFT-1 | 795.83 | 13.19 | 15.34 | 11.51 | 643.27 | - | 90.24 | 37.4 |
FFT-2 | 305.90 | 23.01 | 12.80 | 3.65 | 137.90 | 392.94 | - | 9.3 |
FFT-3 | 221 | 16.30 | 47.00 | 25.70 | 490 | 490 | 282.2 | 6.4 |
FFT-4 | 96.60 | 11.60 | 20.70 | 10.50 | 150 | 150 | 174.2 | 4.3 |
Sample | pH | EC (µS/cm) | Na+ | K+ | Ca2+ | Mg2+ | Cl− | F− | HCO3− | NO3− | SO42− |
---|---|---|---|---|---|---|---|---|---|---|---|
OSPW | 8.29 | 949 | 162.16 | 9.57 | 37.70 | 12.70 | 32.44 | 3.72 | - | 17.05 | 241.60 |
Sample | Charge Density | Molecular Weight | Bulk Density (kg/m3) | Brookfield Viscosity (cP) | Particle Size (mm) | ||
---|---|---|---|---|---|---|---|
at 5.0 g/L | at 2.5 g/L | At 1.0 g/L | |||||
A3338 | High | High | 0.6–0.9 | 1520 | 570 | 250 | 0.15–2 |
NRG1000 | Medium | Low | 0.80 | 1250 | 450 | 150 | 0.15–2 |
FFT | Solids Content (Weight%) | MBI (mEq/100 g) | % Clay |
---|---|---|---|
FFT-2 | 24.68 | 14.1 | 101.0 |
Diluted FFT-3 | 23.25 | 8.1 | 58.1 |
Diluted FFT-4 | 23.10 | 10.7 | 76.7 |
FFT | SAR | MBI (mEq/100 g) | pH | NWR (%) |
---|---|---|---|---|
FFT-1 | 37.4 | 10.4 | 7.80 | 9.9 |
FFT-4 | 4.3 | 10.7 | 7.92 | 13.7 |
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Li, Y.; Kaminsky, H.; Gong, X.Y.; Sun, Y.S.; Ghuzi, M.; Sadighian, A. What Affects Dewatering Performance of High Density Slurry? Minerals 2021, 11, 761. https://doi.org/10.3390/min11070761
Li Y, Kaminsky H, Gong XY, Sun YS, Ghuzi M, Sadighian A. What Affects Dewatering Performance of High Density Slurry? Minerals. 2021; 11(7):761. https://doi.org/10.3390/min11070761
Chicago/Turabian StyleLi, Yunhui, Heather Kaminsky, Xue Yuki Gong, Yijia Simon Sun, Mohammed Ghuzi, and Ardalan Sadighian. 2021. "What Affects Dewatering Performance of High Density Slurry?" Minerals 11, no. 7: 761. https://doi.org/10.3390/min11070761
APA StyleLi, Y., Kaminsky, H., Gong, X. Y., Sun, Y. S., Ghuzi, M., & Sadighian, A. (2021). What Affects Dewatering Performance of High Density Slurry? Minerals, 11(7), 761. https://doi.org/10.3390/min11070761