Assessing Options for Remediation of Contaminated Mine Site Drainage Entering the River Teign, Southwest England
Abstract
:1. Introduction
2. Methodology
2.1. Study Area
2.2. Current Studies Using Red Media Technology Products
2.3. Alternative Treatment Method Using Biochar
2.4. River Teign Metal Concentrations
2.5. Real-World Application Model
3. Results
3.1. Removal Efficiency Results
3.2. River Teign Metal Concentration Results
3.3. Real-World Application Model
4. Discussion
4.1. Pellet Removal Efficiency
4.2. Biochar Removal Efficiency
4.3. River Teign Compliance
4.4. Application to Bridford Mine
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Duration | pH of Mine Adit Water | |||
---|---|---|---|---|
Compressed Pellets (CP) | Fired Pellets (FP) | Fired Acid Etched Pellets (FAE) | Powdered Pellets (PP) | |
Start of Experiment (0 h) | 4.65 | 4.65 | 3.78 | 4.59 |
End of Experiment | 7.80 (53 h) | 9.33 (53 h) | 5.5 (6 h) | 8.84 (24 h) |
Hours | Removal Efficiency for Zinc (%) | |||
---|---|---|---|---|
Compressed | Fired | FAE | Powdered | |
2 | 73.7 | 22.0 | 25.6 | 23.3 |
24 | 99.5 | 99.3 | 97.2 | 94.7 |
53 | 99.8 | 99.9 | - | - |
Highest Adsorption Capacity Reached | Adsorption Capacity of Pellets (mg/kg) | ||
---|---|---|---|
Zn | Cd | Pb | |
Compressed Pellet | >105.6 | >1.1 | >5.36 |
Fired Pellet | >150 | >1.56 | >3.89 |
Field-Scale Trial (Compressed Pellet) | 8743 | 35.40 | 2089 |
Treatment Method | Tonnes/yr Required (Assuming 100% Efficiency) | Tonnes/yr Required Based on Removal Efficiencies from This Study | Cost |
---|---|---|---|
Compressed Pellet (CP) | 138 | 383 (36% efficiency after 3 months) | £34,067 a year |
Fired Pellet (FP) | 8064 | 8064 (99.9% efficiency after 53 h) | £717,292 a year |
Agricultural Biochar | 110 | 137.5 (80% efficiency after 2 h) | £12,230 |
Wood Biochar | 3056 | 15,280 (20% efficiency after 2 h) | £1,359,156 |
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Share and Cite
Jordan, A.; Hill, R.; Turner, A.; Roberts, T.; Comber, S. Assessing Options for Remediation of Contaminated Mine Site Drainage Entering the River Teign, Southwest England. Minerals 2020, 10, 721. https://doi.org/10.3390/min10080721
Jordan A, Hill R, Turner A, Roberts T, Comber S. Assessing Options for Remediation of Contaminated Mine Site Drainage Entering the River Teign, Southwest England. Minerals. 2020; 10(8):721. https://doi.org/10.3390/min10080721
Chicago/Turabian StyleJordan, Abigail, Rachel Hill, Adrienne Turner, Tyrone Roberts, and Sean Comber. 2020. "Assessing Options for Remediation of Contaminated Mine Site Drainage Entering the River Teign, Southwest England" Minerals 10, no. 8: 721. https://doi.org/10.3390/min10080721
APA StyleJordan, A., Hill, R., Turner, A., Roberts, T., & Comber, S. (2020). Assessing Options for Remediation of Contaminated Mine Site Drainage Entering the River Teign, Southwest England. Minerals, 10(8), 721. https://doi.org/10.3390/min10080721