Technoeconomic Assessment of LNG-Fueled Solid Oxide Fuel Cells in Small Island Systems: The Patmos Island Case Study
Abstract
:1. Introduction
- The use of a two-step approach for the techno-economic evaluation of the system. In the first step, a simplified optimization model produces a viable estimate for the capacity of the fuel cell. The second step performs a detailed economic evaluation considering also secondary income streams, such as waste heat to desalination.
- A sensitivity analysis on the assumed costs. The performed analysis aims to explore the variability of the investment due to the versatility of fuel prices, and especially the LNG price, which is vulnerable to the recent war events in Ukraine
2. Methodology
- Analysis of the energy system behavior when some or all of the diesel engines are replaced by the SOFC units—calculation of critical indicators such as fuel consumption, total system efficiency, amount of heat to be recovered and exploited. For that reason, we develop a model and perform energy system simulations on a yearly basis before and after the LNG-based system installation.
- Estimation of the quantities of desalinated water that can be produced and calculation of the percentage of potable water needs that can be covered.
- Thorough economic analysis to identify the conditions that make the concept feasible.
- Logistics for LNG transport.
- Environmental and social aspects.
- Status of the legal framework and next steps.
2.1. Energy System Modeling
2.2. Detailed Technoeconomic Assessment
2.2.1. Return Time of the Invested Capital (Repayment)
2.2.2. Net Present Value (NPV)
2.2.3. Internal Rate of Return (IRR)
2.2.4. Levelized Cost of Energy (LCOE)
3. Case Definition
3.1. Patmos Case Study Description
3.2. Technical and Economic Parameters Assumed
3.3. Desalination System (Waste Heat Recovery and Exploitation Options)
- Thermal processes: multi-stage flash distillation (MSF), MED, thermal vapor compression (TVC) and mechanical vapor compression (MVC) processes;
- Membrane processes: reverse osmosis (RO) and electrodialysis (ED) processes.
4. Technoeconomic Assessment
4.1. Financing Values
4.2. Revenue—Generation of Electricity and Waste Heat
5. Results and Discussion
5.1. Energy System Simulation Results
5.2. Financial Results
5.3. Sensitivity Analysis
5.3.1. The Influence of CAPEX on the Net Present Value
5.3.2. The Influence of Electrical Energy Market Price on the Net Present Value
5.3.3. Influence of Subsidy on Net Present Value
5.3.4. Influence of the Cost of the Fuel on the Levelized Cost of Electricity
6. Other Considerations
6.1. Logistics for LNG Transport
6.2. Environmental Issues
6.3. Social Consideration
6.4. Energy Policy
6.5. Roadmap of Real Implementation in the Near-Term Future
- Design, sustainability study/research and selection of a proper energy partner, who can install and operate RES of 1 MW nominal power on the island and supply LNG to the energy system.
- Consultation with local authorities and the local community for the understanding of the technological concept, targeting funding as well.
- Consultation with local authorities for the upgrade of the environmental impact assessment report, based on the existing one of the energy partners.
- Installation, production and storage of the energy and water on the island.
7. Discussion and Outlook
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameters | Values |
---|---|
Area [km2] | 34 |
Annual electrical demand [MWh] | 17,806 |
Annual peak demand [MW] | 5.37 |
Conventional capacity [MW] | 6.6 |
Wind turbines capacity [MW] | 1.2 |
Photovoltaic capacity [MW] | 0.15 |
Annual production of conventional units [MWh] | 14,916 |
Annual production of RES [MWh] | 2880 |
RES share [%] | 16.2 |
Specification | Value | Reference |
---|---|---|
Nominal electrical power [kW] | 1100 | [22] |
Electrical efficiency [%] | 60 | [22] |
Heat efficiency [%] | 75 | [22] |
Lifetime [years] | 20 | [21,22] |
Stack degradation [%capacity/year] | 1 | [22] |
Specification | Value | Reference |
---|---|---|
Specific capital cost [1000 EUR/kW] | 6 | [17] |
Fixed operation and maintenance cost [% of CAPEX] | 3 | [22] |
Specification | Value | Reference |
---|---|---|
Interest rate [%] | 5 | [25] |
Diesel marginal cost [EUR/MWh] | 90 | [26] |
LNG marginal cost [EUR/MWh] | 30 | [27] |
Water Cost [EUR/m3] | Capacity [m3/day] | Specific Energy Consumption [kWh/m3] | |
---|---|---|---|
RO Units in Patmos | 1.12 | 750 | 5.5 |
Permanent Financing | Values |
---|---|
Debt [%] | 40 |
Debt term [years] | 13 |
Interest rate [%] | 5 |
% Private equity [%] | 60 |
Target after-tax equity IRR [%] | 10 |
Greek government income tax rate [%] | 24 |
Parameter | Value [MEUR] |
---|---|
Debt | 1.2 |
Equity | 1.8 |
Subsidy | 0 |
Total amount of funding | 3 |
Investment Cost [EUR/m3/day] | Water Cost [EUR/m3/day] | Capacity [m3/day] | Specific Energy Consumption [kWh/m3] | Specific Thermal Energy Consumption [kWh/m3] | |
---|---|---|---|---|---|
MED Unit | 1500 | 0.6 | 720 | 1.5 | 4 |
Supplemental Revenue Stream | Values |
---|---|
Selling price from produced electricity [EUR/MWh] | 150 |
Selling price from desalinated water [EUR/m3] | 1.6 |
Selling price escalation factor [%] | 2 |
Generation Type | Generated Energy [MWh] | Load Share [%] |
---|---|---|
Oil fueled Diesel engine | 6396 | 33.43 |
LNG fueled SOFC | 9691 | 50.65 |
Wind Turbine | 2817 | 14.72 |
Photovoltaic | 230 | 1.20 |
SUM | 19,134 |
Output Summary | Values |
---|---|
NPV [MEUR] | 1.6 |
IRR [%] | 10 |
LCOE [EUR/kWh] | 0.14 |
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Peloriadi, K.; Iliadis, P.; Boutikos, P.; Atsonios, K.; Grammelis, P.; Nikolopoulos, A. Technoeconomic Assessment of LNG-Fueled Solid Oxide Fuel Cells in Small Island Systems: The Patmos Island Case Study. Energies 2022, 15, 3892. https://doi.org/10.3390/en15113892
Peloriadi K, Iliadis P, Boutikos P, Atsonios K, Grammelis P, Nikolopoulos A. Technoeconomic Assessment of LNG-Fueled Solid Oxide Fuel Cells in Small Island Systems: The Patmos Island Case Study. Energies. 2022; 15(11):3892. https://doi.org/10.3390/en15113892
Chicago/Turabian StylePeloriadi, Konstantina, Petros Iliadis, Panagiotis Boutikos, Konstantinos Atsonios, Panagiotis Grammelis, and Aristeidis Nikolopoulos. 2022. "Technoeconomic Assessment of LNG-Fueled Solid Oxide Fuel Cells in Small Island Systems: The Patmos Island Case Study" Energies 15, no. 11: 3892. https://doi.org/10.3390/en15113892
APA StylePeloriadi, K., Iliadis, P., Boutikos, P., Atsonios, K., Grammelis, P., & Nikolopoulos, A. (2022). Technoeconomic Assessment of LNG-Fueled Solid Oxide Fuel Cells in Small Island Systems: The Patmos Island Case Study. Energies, 15(11), 3892. https://doi.org/10.3390/en15113892