Life Cycle Assessment of Community-Based Sewer Mining: Integrated Heat Recovery and Fit-For-Purpose Water Reuse
Abstract
:1. Introduction
2. Materials and Methods
2.1. Community System and Problem Framing
2.2. Life Cycle Inventory (LCI) and Life Cycle Assessment (LCA)
2.3. Scenarios
2.3.1. Business as Usual (BAU)
2.3.2. Sewage Heat Recovery and District Energy System (DES)
2.3.3. Community-Based Membrane Bioreactor (MBR) for Water Reuse
2.4. System Assumptions
- Material transport was generalized using the ecoinvent global market databases (v3.5) to account for transport impacts.
- 10,000 detached housing units representing 30,000 EP based on standard community developments for the City of Edmonton (Supplementary Materials, Section S1).
- Heating distribution building components, such as radiant floor/ceiling systems used for the district heating system and conventional building heating distribution components, were excluded from the analysis.
- Conveyance of recycled water within buildings was excluded from the study.
- Sludge management and gaseous operational emissions for individual components were excluded from this study.
Sensitivity Analysis
3. Results
3.1. Comparison of Different Water Reuse Scenarios
3.2. Comparison of the Different System Components
3.3. Sensitivity Analysis—Alternative Electricity Mixes
4. Discussion
4.1. Limitations
4.2. Future Research
4.2.1. Other Resource Recovery and Future Technologies
4.2.2. Scales of Implementations
4.2.3. Comparisons of Transitional Designs
5. Conclusions
- Compared to BAU centralized water services, the lowest impacts modeled were for scenarios with community-based MBR wastewater treatment and water reuse.
- Conventional space and water heating components typically contributed the most to GWP values among the system components. A sewage-heat-recovery-based district heating system offered the best environmental performance of the systems modelled.
- Integrating MBR wastewater treatment and water reuse into a district heating schema provides additional environmental savings at a community scale, and under future scenarios utilizing renewable energy mixes.
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Scenario Category | Heating System | Water Treatment System | Wastewater Treatment System | Wastewater Reuse | Water Use Application |
---|---|---|---|---|---|
BAU | Conventional gas furnace and water heater | Conventional water treatment plant | Conventional wastewater treatment plant | × | IR |
IR + TF | |||||
IR + TF + CW | |||||
DES | Sewage heat recovery for district heating | Conventional water treatment plant | Conventional wastewater treatment plant | × | IR |
IR + TF | |||||
IR + TF + CW | |||||
DES+MBR | Sewage heat recovery for district heating | Membrane bioreactors | ✓ | IR | |
IR + TF | |||||
IR + TF + CW |
BAU | DES | DES + MBR | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
IR | IR + TF | IR + TF + CW | IR | IR + TF | IR + TF + CW | IR | IR + TF | IR + TF + CW | ||
GWP (kg CO2-eq.PE−1.y−1) | ||||||||||
Water Treatment System | CON | 6.71 × 10−1 | 6.75 × 10−1 | 6.78 × 10−1 | 6.71 × 10−1 | 6.75 × 10−1 | 6.78 × 10−1 | --- | --- | --- |
OPR | 1.07 | 7.29 | 1.14 × 101 | 1.07 | 7.29 | 1.14 × 101 | --- | --- | --- | |
Space and Water Heating System | CON | 2.86 | 2.86 | 2.86 | 5.73 × 10−1 | 5.73 × 10−1 | 5.73 × 10−1 | 5.73 × 10−1 | 5.73 × 10−1 | 5.73 × 10−1 |
OPR | 8.17 × 102 | 8.17 × 102 | 8.17 × 102 | 3.12 × 102 | 3.12 × 102 | 3.12 × 102 | 3.12 × 102 | 3.12 × 102 | 3.12 × 102 | |
Wastewater Treatment System | CON | 5.85 | 5.85 | 5.85 | 5.85 | 5.85 | 5.85 | --- | --- | --- |
OPR | 1.30 × 101 | 8.86 × 101 | 1.38 × 102 | 1.30 × 101 | 8.86 × 101 | 1.38 × 102 | --- | --- | --- | |
MBR System | CON | --- | --- | --- | --- | --- | --- | 4.12 × 10−1 | 2.59 | 4.02 |
OPR | --- | --- | --- | --- | --- | --- | 5.85 | 3.98 × 101 | 6.20 × 101 | |
Water Reuse Savings | --- | --- | --- | --- | --- | --- | −1.07 | −7.29 | −1.14 × 101 | |
Total | 8.41 × 102 | 9.23 × 102 | 9.76 × 102 | 3.33 × 102 | 4.15 × 102 | 4.69 × 102 | 3.18 × 102 | 3.48 × 102 | 3.67 × 102 | |
EUP (kg N-eq.PE−1.y−1) | ||||||||||
Water Treatment System | CON | 1.01 × 10−4 | 1.02 × 10−4 | 1.03 × 10−4 | 1.01 × 10−4 | 1.02 × 10−4 | 1.03 × 10−4 | --- | --- | --- |
OPR | 1.80 × 10−4 | 1.22 × 10−3 | 1.91 × 10−3 | 1.80 × 10−4 | 1.22 × 10−3 | 1.91 × 10−3 | --- | --- | --- | |
Space and Water Heating System | CON | 6.78 × 10−4 | 6.78 × 10−4 | 6.78 × 10−4 | 1.16 × 10−4 | 1.16 × 10−4 | 1.16 × 10−4 | 1.16 × 10−4 | 1.16 × 10−4 | 1.16 × 10−4 |
OPR | 4.09 × 10−2 | 4.09 × 10−2 | 4.09 × 10−2 | 4.72 × 10−2 | 4.72 × 10−2 | 4.72 × 10−2 | 4.72 × 10−2 | 4.72 × 10−2 | 4.72 × 10−2 | |
Wastewater Treatment System | CON | 1.32 × 10−3 | 1.31 × 10−3 | 1.32 × 10−3 | 1.32 × 10−3 | 1.31 × 10−3 | 1.32 × 10−3 | --- | --- | --- |
OPR | 7.32 × 10−3 | 4.98 × 10−2 | 7.76 × 10−2 | 7.32 × 10−3 | 4.98 × 10−2 | 7.76 × 10−2 | --- | --- | --- | |
MBR System | CON | --- | --- | --- | --- | --- | --- | 1.08 × 10−4 | 6.82 × 10−4 | 1.06 × 10−3 |
OPR | --- | --- | --- | --- | --- | --- | 9.56 × 10−4 | 6.50 × 10−3 | 1.01 × 10−2 | |
Water Reuse Savings | --- | --- | --- | --- | --- | --- | −1.80 × 10−4 | −1.22 × 10−3 | −1.91 × 10−3 | |
Total | 5.05 × 10−2 | 9.40 × 10−2 | 1.22 × 10−1 | 5.62 × 10−2 | 9.97 × 10−2 | 1.28 × 10−1 | 4.82 × 10−2 | 5.32 × 10−2 | 5.66 × 10−2 | |
HHCP (kg benzene-eq.PE-1.y-1) | ||||||||||
Water Treatment System | CON | 3.72 × 10−3 | 3.74 × 10−3 | 3.76 × 10−3 | 3.72 × 10−3 | 3.74 × 10−3 | 3.76 × 10−3 | --- | --- | --- |
OPR | 3.17 × 10−3 | 2.16 × 10−2 | 3.37 × 10−2 | 3.17 × 10−3 | 2.16 × 10−2 | 3.37 × 10−2 | --- | --- | --- | |
Space and Water Heating System | CON | 3.41 × 10−2 | 3.41 × 10−2 | 3.41 × 10−2 | 7.44 × 10−3 | 7.44 × 10−3 | 7.44 × 10−3 | 7.44 × 10−3 | 7.44 × 10−3 | 7.44 × 10−3 |
OPR | 4.46 × 10−1 | 4.46 × 10−1 | 4.46 × 10−1 | 4.30 × 10−1 | 4.30 × 10−1 | 4.30 × 10−1 | 4.30 × 10−1 | 4.30 × 10−1 | 4.30 × 10−1 | |
Wastewater Treatment System | CON | 5.55 × 10−2 | 5.55 × 10−2 | 5.55 × 10−2 | 5.55 × 10−2 | 5.55 × 10−2 | 5.55 × 10−2 | --- | --- | --- |
OPR | 7.66 × 10−2 | 5.21 × 10−1 | 8.12 × 10−1 | 7.66 × 10−2 | 5.21 × 10−1 | 8.12 × 10−1 | --- | --- | --- | |
MBR System | CON | --- | --- | --- | --- | --- | --- | 2.51 × 10−3 | 1.67 × 10−2 | 2.61 × 10−2 |
OPR | --- | --- | --- | --- | --- | --- | 9.37 × 10−3 | 6.37 × 10−2 | 9.93 × 10−2 | |
Water Reuse Savings | --- | --- | --- | --- | --- | --- | −3.17 × 10−3 | −2.16 × 10−2 | −3.37 × 10−2 | |
Total | 6.19 × 10−1 | 1.08 | 1.39 | 5.77 × 10−1 | 1.04 | 1.34 | 4.46 × 10−1 | 4.97 × 10−1 | 5.29 × 10−1 |
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Cabling, L.P.B.; Kobayashi, Y.; Davies, E.G.R.; Ashbolt, N.J.; Liu, Y. Life Cycle Assessment of Community-Based Sewer Mining: Integrated Heat Recovery and Fit-For-Purpose Water Reuse. Environments 2020, 7, 36. https://doi.org/10.3390/environments7050036
Cabling LPB, Kobayashi Y, Davies EGR, Ashbolt NJ, Liu Y. Life Cycle Assessment of Community-Based Sewer Mining: Integrated Heat Recovery and Fit-For-Purpose Water Reuse. Environments. 2020; 7(5):36. https://doi.org/10.3390/environments7050036
Chicago/Turabian StyleCabling, Ludwig Paul B., Yumi Kobayashi, Evan G. R. Davies, Nicholas J. Ashbolt, and Yang Liu. 2020. "Life Cycle Assessment of Community-Based Sewer Mining: Integrated Heat Recovery and Fit-For-Purpose Water Reuse" Environments 7, no. 5: 36. https://doi.org/10.3390/environments7050036
APA StyleCabling, L. P. B., Kobayashi, Y., Davies, E. G. R., Ashbolt, N. J., & Liu, Y. (2020). Life Cycle Assessment of Community-Based Sewer Mining: Integrated Heat Recovery and Fit-For-Purpose Water Reuse. Environments, 7(5), 36. https://doi.org/10.3390/environments7050036