Utilization of Lead Nitrate to Enhance the Impact of Hydroxamic Acids on the Hydrophobic Aggregation and Flotation Behavior of Cassiterite
Abstract
:1. Introduction
2. Results
2.1. The Effect of Lead Nitrate on the Flotation Behavior of Fine Cassiterite
2.2. The Effect of Lead Nitrate on the Hydrophobic Aggregation of Fine Cassiterite
2.2.1. Effect of Lead Nitrate on the Hydrophobic Flocculation of Fine Cassiterite Using BHA
2.2.2. Effect of Lead Nitrate on the Hydrophobic Flocculation of Cassiterite Using HHA
2.2.3. Effect of Lead Nitrate on Hydrophobic Flocculation of Cassiterite Using OHA
2.3. Interaction Energy Estimation by the Extended DLVO Theory
3. Material and Methods
3.1. Single Cassiterite Sample and Reagents
3.2. Micro-Flotation Tests
3.3. Zeta Potential and Contact Angle Measurements
3.4. Focused Beam Reflectance Measurement (FBRM) and Particle Video Microscope (PVM) Observation
4. Conclusions
- (1)
- Micro-flotation tests suggested that the addition of LN could improve the flotation recovery of fine cassiterite and the activation effect of LN on BHA as a collector was the most effective, followed by HHA and OHA.
- (2)
- FBRM and PVM results indicated that lead nitrate could facilitate the formation of hydrophobic aggregates of fine cassiterite using BHA and HHA as the collector, and reduce the necessary concentration of OHA to induce the formation of hydrophobic aggregates. In the presence of lead nitrate, when the amount of BHA was too large (2 × 10−3 mol/L), fine cassiterite particle could not form hydrophobic aggregates, and when the amount of OHA was too large (4 × 10−4 mol/L), the formed hydrophobic aggregates could be broken quickly.
- (3)
- The EDLVO calculation results indicated that lead nitrate could decrease Vedl and increase Vhy between cassiterite particles, eliminating the high energy barriers that existed between the particles and favoring the hydrophobic aggregate using BHA, HHA, and a lower concentration of OHA as the collector.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Reagent | Concentration (mol/L) | d1 (μm) | d2 (μm) | d3 (μm) | R (μm/min) | s (μm/min) |
---|---|---|---|---|---|---|
BHA | 3 × 10−4 | 38.3 | 47.1 | 44.5 | 1.76 | 0.26 |
5 × 10−4 | 37.5 | 45.4 | 43.7 | 1.60 | 0.17 | |
2 × 10−3 | 35.6 | 37.1 | 37.2 | 0.30 | 0.01 | |
HHA | 5 × 10−5 | 37.8 | 48.4 | 45.6 | 2.12 | 0.28 |
1 × 10−4 | 36.8 | 43.9 | 42.8 | 1.43 | 0.11 | |
4 × 10−4 | 35.7 | 44.4 | 44.4 | 1.75 | 0.002 | |
OHA | 5 × 10−5 | 37.2 | 74.7 | 64.9 | 7.30 | 0.98 |
1 × 10−4 | 38.8 | 81.4 | 61.4 | 8.51 | 2.00 | |
4 × 10−4 | 37.4 | 48.5 | 44.8 | 2.23 | 0.37 |
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Jin, S.; Liu, X.; Feng, Y.; Chen, Y.; Wang, M.; Xiao, Q. Utilization of Lead Nitrate to Enhance the Impact of Hydroxamic Acids on the Hydrophobic Aggregation and Flotation Behavior of Cassiterite. Molecules 2024, 29, 3692. https://doi.org/10.3390/molecules29153692
Jin S, Liu X, Feng Y, Chen Y, Wang M, Xiao Q. Utilization of Lead Nitrate to Enhance the Impact of Hydroxamic Acids on the Hydrophobic Aggregation and Flotation Behavior of Cassiterite. Molecules. 2024; 29(15):3692. https://doi.org/10.3390/molecules29153692
Chicago/Turabian StyleJin, Saizhen, Xiaobo Liu, Yun Feng, Yanfei Chen, Mengtao Wang, and Qingfei Xiao. 2024. "Utilization of Lead Nitrate to Enhance the Impact of Hydroxamic Acids on the Hydrophobic Aggregation and Flotation Behavior of Cassiterite" Molecules 29, no. 15: 3692. https://doi.org/10.3390/molecules29153692
APA StyleJin, S., Liu, X., Feng, Y., Chen, Y., Wang, M., & Xiao, Q. (2024). Utilization of Lead Nitrate to Enhance the Impact of Hydroxamic Acids on the Hydrophobic Aggregation and Flotation Behavior of Cassiterite. Molecules, 29(15), 3692. https://doi.org/10.3390/molecules29153692