Ammonia and Biogas from Anaerobic and Sewage Digestion for Novel Heat, Power and Transport Applications—A Techno-Economic and GHG Emissions Study for the United Kingdom
Abstract
:1. Introduction
2. Materials and Methods
2.1. Economic Analysis with Scale
2.2. Interpretation for Anaerobic Digestion Sites
2.3. CAPEX
2.3.1. Overall
2.3.2. H2 Transport Fuel: Scenario 1
2.3.3. H2 Grid Injection: Scenario 2
2.3.4. SOFC: Scenario 3
2.4. OPEX
2.4.1. Overall
2.4.2. H2 Transport Fuel: Scenario 1
2.4.3. H2 Grid Injection: Scenario 2
2.5. Income Streams
2.5.1. H2 Transport Fuel: Scenario 1
2.5.2. H2 Grid Injection: Scenario 2
2.5.3. SOFC: Scenario 3
2.6. Greenhouse Gas Emission Analysis
3. Results
3.1. H2 Production Overview
3.2. Scenario 1: H2 for Transport
3.3. Scenario 2: H2 for Grid Injection
3.4. Scenario 3: SOFC Operation
3.5. Direct Scenario Comparison
3.6. Applicability to the Current UK Landscape
3.7. Greenhouse Gas Emission Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Function (GBP/kW−1) | |
---|---|
Stack CAPEX | 2093 |
Stack replacement | 434 |
Clean-up system CAPEX | 450 |
DC/AC inverter | 220 |
Source | Factor | Unit | Ref. |
---|---|---|---|
Electricity grid | 257.9 | gCO2e/kWh | [40] |
High quality heat | 210 | gCO2e/kWh | [39] |
Bus emissions | 1282 | gCO2e/km | [40] |
H2 bus fuel requirement | 9 | kg H2/100 km | [41] |
Domestic heat | 180 | gCO2e/kWh | [40] |
N2O emissions | 0.002 | kg of N (as N2O)/kg N diverted | [42] |
Aeration abatement | 4.57 | kWh/kg of oxidised N | [15] |
Stream | H2O | NH3 | CH4 | H2 | CO | CO2 | Temp (°C) | Press (Bar) |
---|---|---|---|---|---|---|---|---|
1 | - | - | 343.1 | - | - | 506.1 | 23 | - |
2 | 27,538 | 50.3 | - | - | - | - | 23 | 1 |
3 | - | - | - | - | - | 506.1 | 23 | 1 |
4 | - | - | 95.2 | - | - | - | 23 | 1 |
5 | - | - | 247.9 | - | - | - | 995 | 25 |
6 | - | 45.2 | - | - | - | - | 900 | 25 |
7 | 853.5 | - | - | - | - | - | 900 | 25 |
8 | 523.2 | 0.3 | 5.2 | 105.9 | 317.0 | 167.5 | 1000 | 22.5 |
9 | 328.5 | 0.3 | 5.2 | 127.7 | 14.4 | 643.1 | 244 | 13.3 |
10 | - | 0.3 | 5.2 | 12.8 | 14.4 | 643.1 | 23 | 1 |
11 | - | - | - | 114.9 | - | - | 23 | 1 |
Stream | H2O | NH3 | CH4 | O2 | N2 | CO | CO2 | H2 | Temp (°C) | Press (Bar) |
---|---|---|---|---|---|---|---|---|---|---|
1 | - | - | 343.1 | - | - | - | 506.1 | - | 23 | - |
2 | 27,538 | 50.3 | - | - | - | - | - | - | 23 | 1 |
3 | - | - | - | - | - | - | 506.1 | - | 23 | 1 |
4 | - | - | 343.1 | - | - | - | - | - | 700 | 1.1 |
5 | 18.8 | 45.6 | - | - | - | - | 79.1 | - | 700 | 1.1 |
6 | 963 | 0.01 | - | - | - | - | - | - | 700 | 1.1 |
7 | - | - | - | 5409 | 17,815 | - | - | - | 867 | 1.1 |
8 | 1611 | - | - | - | 46.4 | 287.5 | 568.5 | 24.0 | 910 | 1.08 |
9 | - | - | - | 4335 | 17,815 | - | - | - | 910 | 1.08 |
10 | 1825 | - | - | 3982 | 17,861 | - | 1020 | - | 1075 | 1 |
SD | Methane Limit (Tonnes day−1) | Number of Plants | Total Methane (Tonnes day−1) | H2 Production (Tonnes day−1) | SOFC Power Generation (MWh day−1) |
---|---|---|---|---|---|
S1 | 7.1 | 19 | 249 | 83 | |
S2 | 17.0 | 3 | 69 | 23 | |
S3 | 9.2 | 13 | 202 | 0 | 1425 |
S2b | 11.3 | 11 | 181 | 61 | |
AD | |||||
S1 | 8.2 | 42 | 511 | 171 | |
S2 | 20.0 | 1 | 22 | 7 | |
S3 | 10.0 | 23 | 338 | 2388 | |
S2b | 12.5 | 15 | 247 | 83 |
S1 (g CO2e/kg bio-CH4) | S2 (g CO2e/kg bio-CH4) | S3 (g CO2e/kg bio-CH4) | |||
---|---|---|---|---|---|
Net process power | 729 | Net process power | 356 | Net process power | −1821 |
High quality heat | 600 | High quality heat | 600 | Power Improvement | −698 |
NH3 Diversion | −391 | NH3 Diversion | −391 | NH3 diversion | −391 |
Abated bus emissions | −4822 | Abated Domestic Heat | −2009 | ||
AD power replacement | 1122 | AD power replacement | 1122 | ||
SD Total | −4275 | −1444 | −2212 | ||
SD Improvement | −3153 | −321 | −1090 | ||
AD Total | −3616 | −784 | −1552 | ||
AD Improvement | −2493 | 339 | −430 |
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Grasham, O.; Dupont, V.; Cockerill, T.; Camargo-Valero, M.A. Ammonia and Biogas from Anaerobic and Sewage Digestion for Novel Heat, Power and Transport Applications—A Techno-Economic and GHG Emissions Study for the United Kingdom. Energies 2022, 15, 2174. https://doi.org/10.3390/en15062174
Grasham O, Dupont V, Cockerill T, Camargo-Valero MA. Ammonia and Biogas from Anaerobic and Sewage Digestion for Novel Heat, Power and Transport Applications—A Techno-Economic and GHG Emissions Study for the United Kingdom. Energies. 2022; 15(6):2174. https://doi.org/10.3390/en15062174
Chicago/Turabian StyleGrasham, Oliver, Valerie Dupont, Timothy Cockerill, and Miller Alonso Camargo-Valero. 2022. "Ammonia and Biogas from Anaerobic and Sewage Digestion for Novel Heat, Power and Transport Applications—A Techno-Economic and GHG Emissions Study for the United Kingdom" Energies 15, no. 6: 2174. https://doi.org/10.3390/en15062174
APA StyleGrasham, O., Dupont, V., Cockerill, T., & Camargo-Valero, M. A. (2022). Ammonia and Biogas from Anaerobic and Sewage Digestion for Novel Heat, Power and Transport Applications—A Techno-Economic and GHG Emissions Study for the United Kingdom. Energies, 15(6), 2174. https://doi.org/10.3390/en15062174