Management of Tundra Wastewater Treatment Wetlands within a Lagoon/Wetland Hybridized Treatment System Using the SubWet 2.0 Wetland Model
Abstract
:1. Introduction
2. Methods
3. Site Descriptions
3.2. Paulatuk, Northwest Territories
3.3. Data
3.4. SubWet 2.0
3.5. Case Study Scenarios
4. Results
4.1. Scenario 1: Influence of Pre-Treatment at the Chesterfield Inlet Wetland
Test Variable | Unit | Influent values for Chesterfield Inlet | Effluent values for Chesterfield Inlet | Influent values for Paulatuk | Effluent values for Paulatuk |
---|---|---|---|---|---|
cBOD5 | mg O2/L | 207 | 10.5 | 40 | 2 |
Ammonium-N | mg N/L | 29.5 | 1.1 | 3.2 | 0.01 |
Nitrate-N | mg N/L | 0.19 | 0.01 | 0.17 | 0.36 |
Phosphorus | mg P/L | 5.49 | 0.4 | 2.42 | 0.04 |
Test Variable | Unit | Pre-treatment influent concentration values | Simulated effluent concentrations results |
---|---|---|---|
cBOD5 | mg O2/L | 40 | 5 |
Ammonium-N | mg N/L | 3.2 | 0.1 |
Nitrate-N | mg N/L | 0.17 | 0.02 |
Phosphorus | mg P/L | 2.42 | 0.5 |
4.2. Scenario 2: Effect of Pre-Treatment on Chesterfield Inlet Wetland
4.3. Scenario 3: Seasonal Temperature on Treatment Efficiency
Test Variable | Unit | Pre-treatment influent values for Chesterfield Inlet | Simulation results from tripling the flow (108 m3/d) | Simulation results from quadrupling the flow (144 m3/d) | Simulation results from quintupling the flow (180 m3/d) |
---|---|---|---|---|---|
cBOD5 | mg O2/L | 40 | 17 | 20 | 23 |
Ammonium-N | mg N/L | 3.2 | 0.6 | 0.8 | 1.1 |
Nitrate-N | mg N/L | 0.17 | 0.07 | 0.09 | 0.1 |
Phosphorus | mg P/L | 2.4 | 1 | 1.1 | 1.2 |
Test Variable | Unit | Influent values for Chesterfield Inlet | Simulation results at 7.5 °C | Simulation results at 3 °C |
---|---|---|---|---|
cBOD5 | mg O2/L | 207 | 10.4 | 15.3 |
Ammonium-N | mg N/L | 29.5 | 1.1 | 1.7 |
Nitrate-N | mg N/L | 0.19 | 0.06 | 0.08 |
Phosphorus | mg P/L | 5.49 | 0.4 | 0.4 |
4.4. Scenario 4: Reduced Wetland Size
Design Variable | Initial Design Values | Modified Design Values |
---|---|---|
Width (m) | 69 | 69 |
Length (m) | 720 | 468 |
Depth (m) | 0.3 | 0.3 |
Area (m2) | 49,900 | 32,400 |
Volume (m3) | 15,000 | 9,750 |
Flow rate (m3/24h) | 36 | 36 |
Retention time per box | 23 | 15 |
Test Variable | Unit | Influent values for Chesterfield Inlet | Initial effluent concentration values before size reduction | Simulation results after reducing initial size by 35% |
---|---|---|---|---|
cBOD5 | mg O2/L | 207 | 10.5 | 21 |
Ammonium-N | mg N/L | 29.5 | 1.1 | 0.54 |
Nitrate-N | mg N/L | 0.19 | 0.01 | 0.06 |
Phosphorus | mg P/L | 5.49 | 0.4 | 0.61 |
4.5. Scenario 5: Response of the Paulatuk Tundra Wetland to Temporary Increases in Influent Volume and Concentration
5. Discussion
Treatment Potential of Tundra Wetlands
6. Conclusions
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Chouinard, A.; Yates, C.N.; Balch, G.C.; Jørgensen, S.E.; Wootton, B.C.; Anderson, B.C. Management of Tundra Wastewater Treatment Wetlands within a Lagoon/Wetland Hybridized Treatment System Using the SubWet 2.0 Wetland Model. Water 2014, 6, 439-454. https://doi.org/10.3390/w6030439
Chouinard A, Yates CN, Balch GC, Jørgensen SE, Wootton BC, Anderson BC. Management of Tundra Wastewater Treatment Wetlands within a Lagoon/Wetland Hybridized Treatment System Using the SubWet 2.0 Wetland Model. Water. 2014; 6(3):439-454. https://doi.org/10.3390/w6030439
Chicago/Turabian StyleChouinard, Annie, Colin N. Yates, Gordon C. Balch, Sven E. Jørgensen, Brent C. Wootton, and Bruce C. Anderson. 2014. "Management of Tundra Wastewater Treatment Wetlands within a Lagoon/Wetland Hybridized Treatment System Using the SubWet 2.0 Wetland Model" Water 6, no. 3: 439-454. https://doi.org/10.3390/w6030439
APA StyleChouinard, A., Yates, C. N., Balch, G. C., Jørgensen, S. E., Wootton, B. C., & Anderson, B. C. (2014). Management of Tundra Wastewater Treatment Wetlands within a Lagoon/Wetland Hybridized Treatment System Using the SubWet 2.0 Wetland Model. Water, 6(3), 439-454. https://doi.org/10.3390/w6030439