Insight into the Effect of Nanobubbles on Fine Muscovite Powder Flotation in Different Dodecylamine Concentrations and Stirring Intensities: Kinetics and Mechanism
Abstract
:1. Introduction
2. Experimental Procedure
2.1. Sample and Reagents
2.2. Nanobubbles (NBs)
2.3. Methods
2.3.1. Micro-Flotation
2.3.2. Flotation Kinetics
2.3.3. Particle Vision and Measurement (PVM)
2.3.4. Induction Time Measurement
3. Results and Discussion
3.1. Flotation Kinetics at Different DDA Concentrations with and without NBs
3.2. Flotation Kinetics at Different Stirring Intensities with and without NBs
3.3. Behavior of Bubbles and Particles at Different Stirring Intensities with and without NBs
3.4. Effect of Nanobubbles and DDA on Muscovite Induction Time
4. Conclusions
- The classical first-order kinetic model was consistent with the flotation of fine-grained muscovite under DDA as the collector. The flotation kinetic constant first increased and then decreased with the increase in the amount of DDA. After nanobubble strengthening, the optimal kinetic model was no longer a first-order kinetic model at low agent concentrations. Under different impeller speed conditions, regardless of whether nanobubbles enhanced it, the classic first-order kinetic model was the optimal model. At this time, the flotation kinetic constant k increases with the increase in speed, but the maximum flotation recovery rate ε∞ reaches the maximum at 2000 r/min.
- This study showed that the speed of the impeller was crucial in determining the flotation recovery rate of fine-grained muscovite. The findings indicated that the recovery rate increased as the impeller speed increased, but only up to a specific point. When the speed exceeded 2000 r/min, the recovery rate started to decline. This study also revealed that at lower speeds, the impeller’s turbulent flow field was not strong enough to disperse the mineral particles in the slurry. However, the addition of nanobubbles caused the particles to agglomerate. At 2000 r/min, a well-defined mineral zone around a large number of bubbles was observed, but the large bubbles were stretched and deformed by the high speed’s shear force. At 2500 r/min, the shear force broke up the mineral particles agglomerated by the micro-nano bubbles and weakened the effect of nanobubbles on the flotation of fine-grained muscovite.
- The experimental results obtained from the induction time test indicated that the potential mechanism underlying the reinforcement of fine-grained muscovite with nanobubbles involved pre-adsorption of the bubbles onto the hydrophobic surface subsequent to their interaction with DDA. The behavior of nanobubbles and agents enhanced the probability of adhesion between large bubbles and mineral particles, resulting in a reduction in the induction time of muscovite. Such findings held significant implications for the development of efficient flotation strategies for fine-grained muscovite ores.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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SiO2 | Al2O3 | K2O | Na2O | Fe2O3 | CO2 |
---|---|---|---|---|---|
43.614 | 35.9 | 8.36 | 0.653 | 3.926 | 4.523 |
No. | Model | Formula |
---|---|---|
1 | Classical first-order model | |
2 | First-order model with the rectangular distribution of floatabilities | |
3 | Second-order kinetic model | |
4 | Second-order model with the rectangular distribution of floatabilities |
Dosage | Condition | Parameter | Model 1 | Model 2 | Model 3 | Model 4 |
---|---|---|---|---|---|---|
5 mg/L DDA | With NBs | R2 | 0.977 | 0.985 | 0.991 | 0.993 |
k | 0.0156 | 0.0286 | 0.0275 | 0.0268 | ||
ε∞ | 38.922 | 45.613 | 51.632 | 58.710 | ||
Without NBs | R2 | 0.995 | 0.991 | 0.981 | 0.993 | |
k | 0.0213 | 0.0416 | 0.000585 | 0.0452 | ||
ε∞ | 30.85 | 35.21 | 38.44 | 42.53 | ||
10 mg/L DDA | With NBs | R2 | 0.998 | 0.999 | 0.998 | 0.997 |
k | 0.01568 | 0.0249 | 0.0137 | 0.0219 | ||
ε∞ | 63.39 | 75.34 | 86.75 | 99.84 | ||
Without NBs | R2 | 0.992 | 0.981 | 0.000801 | 0.979 | |
k | 0.03094 | 0.0658 | 0.000585 | 0.0882 | ||
ε∞ | 42.43 | 46.99 | 49.52 | 0.0882 | ||
15 mg/L DDA | With NBs | R2 | 0.984 | 0.991 | 0.988 | 0.985 |
k | 0.0256 | 0.0512 | 0.0336 | 0.0608 | ||
ε∞ | 71.187 | 80.325 | 86.21 | 94.05 | ||
Without NBs | R2 | 0.980 | 0.959 | 0.935 | 0.919 | |
k | 0.0331 | 0.0702 | 0.000574 | 0.0999 | ||
ε∞ | 0.0331 | 73.10 | 76.42 | 81.49 | ||
20 mg/L DDA | With NBs | R2 | 0.998 | 0.988 | 0.971 | 0.959 |
k | 0.0313 | 0.0656 | 0.0429 | 0.0896 | ||
ε∞ | 80.134 | 88.92 | 93.44 | 100.11 | ||
Without NBs | R2 | 0.959 | 0.917 | 0.882 | 0.861 | |
k | 0.0316 | 0.0654 | 0.000465 | 0.0903 | ||
ε∞ | 74.34 | 82.64 | 86.68 | 92.79 |
Speed | Condition | Parameter | Model 1 | Model 2 | Model 3 | Model 4 |
---|---|---|---|---|---|---|
1000 r/min | With NBs | R2 | 0.992 | 0.983 | 0.985 | 0.986 |
k | 0.00718 | 0.0118 | 0.0453 | 0.00846 | ||
ε∞ | 71.43 | 88.38 | 109.75 | 132.31 | ||
Without NBs | R2 | 0.998 | 0.995 | 0.994 | 0.997 | |
k | 0.0088 | 0.0145 | 0.0000527 | 0.0105 | ||
ε∞ | 76.75 | 94.86 | 117.02 | 140.45 | ||
1500 r/min | With NBs | R2 | 0.998 | 0.994 | 0.987 | 0.983 |
k | 0.01717 | 0.0311 | 0.01489 | 0.02959 | ||
ε∞ | 79.316 | 92.99 | 104.68 | 118.61 | ||
Without NBs | R2 | 0.99 | 0.976 | 0.961 | 0.951 | |
k | 0.02342 | 0.04522 | 0.000268 | 0.05116 | ||
ε∞ | 75.62 | 86.26 | 93.35 | 102.67 | ||
2000 r/min | With NBs | R2 | 0.998 | 0.988 | 0.971 | 0.959 |
k | 0.0313 | 0.0656 | 0.0429 | 0.0896 | ||
ε∞ | 80.134 | 88.92 | 93.44 | 100.11 | ||
Without NBs | R2 | 0.959 | 0.917 | 0.882 | 0.861 | |
k | 0.0316 | 0.0654 | 0.000465 | 0.0903 | ||
ε∞ | 74.34 | 82.64 | 86.68 | 92.79 | ||
2500 r/min | With NBs | R2 | 0.990 | 0.985 | 0.989 | 0.983 |
k | 0.02953 | 0.0617 | 0.0459 | 0.08136 | ||
ε∞ | 68.482 | 76.196 | 80.465 | 86.568 | ||
Without NBs | R2 | 0.999 | 0.988 | 0.97 | 0.958 | |
k | 0.0363 | 0.07995 | 0.000673 | 0.12175 | ||
ε∞ | 67.51 | 73.93 | 76.72 | 81.19 |
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Zhang, X.; Ren, L.; Bao, S.; Zhang, Y.; Chen, G.; Chen, B. Insight into the Effect of Nanobubbles on Fine Muscovite Powder Flotation in Different Dodecylamine Concentrations and Stirring Intensities: Kinetics and Mechanism. Minerals 2024, 14, 694. https://doi.org/10.3390/min14070694
Zhang X, Ren L, Bao S, Zhang Y, Chen G, Chen B. Insight into the Effect of Nanobubbles on Fine Muscovite Powder Flotation in Different Dodecylamine Concentrations and Stirring Intensities: Kinetics and Mechanism. Minerals. 2024; 14(7):694. https://doi.org/10.3390/min14070694
Chicago/Turabian StyleZhang, Xinyu, Liuyi Ren, Shenxu Bao, Yimin Zhang, Guohao Chen, and Bo Chen. 2024. "Insight into the Effect of Nanobubbles on Fine Muscovite Powder Flotation in Different Dodecylamine Concentrations and Stirring Intensities: Kinetics and Mechanism" Minerals 14, no. 7: 694. https://doi.org/10.3390/min14070694
APA StyleZhang, X., Ren, L., Bao, S., Zhang, Y., Chen, G., & Chen, B. (2024). Insight into the Effect of Nanobubbles on Fine Muscovite Powder Flotation in Different Dodecylamine Concentrations and Stirring Intensities: Kinetics and Mechanism. Minerals, 14(7), 694. https://doi.org/10.3390/min14070694