Resilient Control Strategies for Urban Energy Transitions: A Robust HRES Sizing Typology for Nearly Zero Energy Ports
Abstract
1. Introduction
2. Materials and Methods
2.1. Initial State: Case Study Selection
2.2. Data Acquisition and Stochastic Load Profiling
2.3. System Architecture and Mathematical Modeling of Control Strategies
2.3.1. Scenario Topology and Design Variables
- Grid-Interactive Mode (Net Metering): Scenarios 2–18, where the grid acts as an infinite buffer for surplus generation.
- Non-Interactive Mode (No Net Metering): Scenarios 19–35, where excess energy is curtailed or stored, enforcing stricter reliance on internal balancing.
- No Autonomy: Baseline reliability dependent on external grid stability.
- 24 h Ride-Through: System sized to sustain critical port operations for 24 h during a blackout.
- 48 h Ride-Through: Extended autonomy for prolonged grid failures.
2.3.2. Stochastic Wind Power Generation Model
2.3.3. Photovoltaic Panel Mathematical Models
2.3.4. Energy Storage Dynamics and Kinetic Modeling
2.3.5. Bidirectional Power Conversion Interface
2.3.6. Economic Feasibility and Lifecycle Cost Modeling
2.3.7. Lifecycle Assessment and Environmental Impact Modeling
2.3.8. Study’s Assumptions
- Regional capital and operational expenditure data for mature technologies, specifically PV and Lead–Acid storage, were derived from verified quotations provided by domestic Greek suppliers. Costs for Vanadium Redox Flow Batteries were based on the international literature averages due to limited local commercial availability.
- The electricity cost is modeled as a flat aggregate tariff of 0.16 €/kWh, encompassing the energy generation charge and regulated network distribution fees, but not any applicable taxes. Transactional costs for the taxes and the NM administrative interface are excluded, as preliminary sensitivity analysis indicated a negligible impact on the global NPC.
- The capital cost of the bidirectional inverter is aggregated within the PV procurement model to reflect standard turnkey installation practices.
- To mitigate the risk of stochastic power drops, the control logic enforces a strict operating reserve requirement. The system must maintain spinning reserves equal to 25% of the instantaneous solar PV output and 50% of the instantaneous wind turbine output to buffer against rapid meteorological fluctuations.
- The lifecycle durability of the Lead–Acid ESS is modeled using a non-linear throughput curve, defined as 3000 cycles at 50% depth of discharge (DoD) and 2000 cycles at 80% DoD. To simulate realistic grid-interactive operation and prevent premature failure, the model constrains the annual throughput to fewer than 120 full equivalent cycles.
2.4. Results and Discussion: Strategic Business Case for Resilient Infrastructure
3. Results
3.1. Analysis of HRES with Net Metering Control Strategies
3.2. Analysis of HRES Without Net Metering Control Strategies
4. Discussion
4.1. System-Level Techno-Economic and Environmental Performance Under Alternative Grid-Interface Strategies
4.2. Role of Grid-Interface Control in Dispatch Flexibility and Network Interaction
4.3. Energy Storage Technology Selection: Operational Safety, Cycling Robustness, and Resilience Implications
4.4. Methodological Implications of High-Resolution Load Modeling in HRES Design
4.5. Model Boundaries, Regulatory Assumptions, and Directions for Extended System Integration
- Integrating green hydrogen as a long-duration seasonal storage vector to mitigate winter solar deficits;
- Implementing advanced control strategies, such as Model Predictive Control, to exploit dynamic pricing and demand response; and
- Expanding the system boundary to include thermal loads and the electrification of port logistics, enabling fully sector-coupled smart port ecosystems.
4.6. Engineering Implications for the Design of Resilient Nearly Zero Energy Ports
5. Conclusions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
| Storage Technology | Commercial Reference | Energy Capacity (kWh) | Rated Capacity (Ah) | Nominal Voltage (V) | Unit Installation Cost (€) | Expected Service Life |
|---|---|---|---|---|---|---|
| Lead–Acid (OPzV) | Sunlight OPzV 4245 1 | 8.88 | 4440 | 2 | 1561.65 | 20 years (≈2000 cycles) |
| Lead–Acid (OPzV) | Sunlight OPzV 1875 1 | 3.95 | 1980 | 2 | 648.2 | 20 years (≈2000 cycles) |
| Lead–Acid (OPzS) | Sunlight OPzS 4620 1 | 9.54 | 4770 | 2 | 1313.45 | 20 years (≈2000 cycles) |
| Lead–Acid (OPzS) | Sunlight OPzS 1905 1 | 3.97 | 1990 | 2 | 549.84 | 20 years (≈2000 cycles) |
| VRFB | Gildemeister CELLCUBE® FB 250–1000 2 | 1240 | 276 | 700 | 272,800 | 25 years (≈3000 cycles) |
| VRFB | Gildemeister CELLCUBE® FB 30–100 3 | 100 | 1770 | 48 | 22,000 | 25 years (≈3000 cycles) |
| 1 https://energypower.gr/wp-content/uploads/2016/10/sunlight-res-opzv.pdf?srsltid=AfmBOopDguyBO5MkfKAA34tfR1_4N7uHEJB-iJSgo2Kl27nWdNqv5hvi 2 https://s3-ap-southeast-2.amazonaws.com/img-admin.exponews.com.au/exhibitors/2/product-sheet_cellcube-fb250-1000_17050540.pdf 3 https://vsunenergy.com.au/wp-content/uploads/2016/11/CellCube-Brochure.pdf | ||||||
| Technology | Candidate Deployment Zones | Reference Equipment | Core Performance Parameters | Sizing/Unit Definition | Installed Cost Basis | Service Life (Years) |
|---|---|---|---|---|---|---|
| PV (incl. inverter) | Rooftops; newly built carports; unused port land via grid Virtual NM | SunPower X21-335-BLK (inverter: SMA) 1 |
| Defined per kWp | Tiered CAPEX (€/kWp): 0–1: 1400; 1–10: 900; 10–50: 800; 50–100: 750; 100–500: 700; >500: 600 | 20 |
| Wind turbine | Unused port land via grid virtual NM; offshore installations | Eunice Thetis 50 kW 2 |
| Defined per unit count | CAPEX (€/kW): 1 unit: 4200; 5 units: 3600 | 20 |
| 1 https://sunbugsolar.com/files/sunbug/imce/Product_Webpages/SunPower/SPR_X21_335_BLK.pdf 2 https://eunice-power.gr/useful-documents/ | ||||||
| RES | Technology | Economy | Energy | Environment | ||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Grid NM | a/a | Port Operations Autonomy | Grid (%) | RF (%) | PV (kWp) | WT (qty) | Inverter (kWp) | ESS (Model-qty) | NPC (M€) | Init. Cap. (k€) | ROI (%) | IRR (%) | PP (y) | LCOE (€/kWh) | Net Energy (kWh/y) | Emissions During Operation (tnCO2,eq/y) | gCO2,eq/kWh | |
| NO CF | CF | |||||||||||||||||
| Net Metering | 0 | Baseline | 100 | 0 | 5.09 | 0.360 | 1,093,280 | 2459.9 | 2250.0 | |||||||||
| 1 | No autonomy | 39.8 | 56.3 | 626 | 911 | x | 0.49 | 413.2 | 89.7 | 93.7 | 1.07 | 0.020 | 36 | 0.1 | 43.2 | 39.5 | ||
| 2 | 36.6 | 58.1 | 592 | 1 | 400 | x | 0.71 | 606.0 | 59.6 | 64 | 1.56 | 0.029 | 449 | 1.0 | 45.0 | 41.2 | ||
| 3 | 32.9 | 66.7 | 9 | x | 1.84 | 1590.0 | 19.6 | 24.3 | 4.07 | 0.088 | −6665 | 0.0 | 28.5 | 26.0 | ||||
| 4 | 24 h autonomy | 12.5 | 79.4 | 763 | 1000 | FB250 (2) | 1.15 | 1026.9 | 33.4 | 37.4 | 2.67 | 0.065 | 150 | 0.3 | 73.5 | 67.2 | ||
| 5 | 12.3 | 77.4 | 794 | 906 | FB30 (24) | 1.16 | 1024.8 | 33.4 | 37.4 | 2.67 | 0.063 | 37 | 0.1 | 76.1 | 69.6 | |||
| 6 | 13.8 | 83.0 | 644 | 769 | OPzS4620 (598) | 1.44 | 1207.4 | 27.1 | 31 | 3.22 | 0.085 | 43 | 0.1 | 50.6 | 46.3 | |||
| 7 | 13.8 | 83.0 | 644 | 448 | OPzS1905 (1488) | 1.71 | 1240.1 | 24.8 | 28.8 | 3.47 | 0.100 | −10 | 0.0 | 50.3 | 46.0 | |||
| 8 | 13.8 | 82.9 | 644 | 931 | OPzS4245 (638) | 1.67 | 1418.2 | 22.4 | 26.3 | 3.79 | 0.098 | 36 | 0.1 | 50.7 | 46.4 | |||
| 9 | 13.8 | 82.9 | 644 | 485 | OPzS1875 (1481) | 1.85 | 1381.9 | 21.9 | 25.8 | 3.87 | 0.108 | 95 | 0.2 | 50.3 | 46.0 | |||
| 10 | 10.3 | 83.1 | 709 | 1 | 947 | FB250 (2) | 1.36 | 1210.2 | 27.6 | 31.7 | 3.15 | 0.078 | 28,042 | 63.1 | 123.0 | 112.5 | ||
| 11 | 48 h autonomy | 13.9 | 86.1 | 787 | 952 | FB250 (4) | 1.74 | 1585 | 20.1 | 24 | 4.15 | 0.106 | −22 | 0.0 | 74.1 | 67.8 | ||
| 12 | 14.2 | 85.8 | 836 | 762 | FB30 (48) | 1.74 | 1574 | 20.2 | 24.1 | 4.14 | 0.106 | −6 | 0.0 | 77.9 | 71.3 | |||
| 13 | 13.0 | 87.0 | 644 | 679 | OPzS4620 (1196) | 2.38 | 1993 | 14.2 | 17.9 | 5.49 | 0.147 | −28 | 0.0 | 56.7 | 51.9 | |||
| 14 | 13.0 | 87.0 | 644 | 400 | OPzS1905 (2976) | 2.91 | 2058 | 11.9 | 15.5 | 6.28 | 0.179 | 4 | 0.0 | 56.8 | 52.0 | |||
| 15 | 13.0 | 87.0 | 644 | 546 | OPzS4245 (1276) | 2.83 | 2415 | 11 | 14.5 | 6.68 | 0.174 | −20 | 0.0 | 56.5 | 51.6 | |||
| 16 | 13.0 | 87.0 | 644 | 410 | OPzS1875 (2962) | 3.19 | 2342 | 10 | 13.4 | 7.14 | 0.196 | −27 | 0.0 | 56.7 | 51.9 | |||
| 17 | 12.3 | 87.7 | 762 | 1 | 617 | FB30 (48) | 1.94 | 1747 | 17.7 | 21.6 | 4.58 | 0.119 | −8397 | 0.0 | 69.4 | 63.5 | ||
| RES | Technology | Economy | Energy | Environment | ||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Grid NM | a/a | Port Operations Autonomy | Grid (%) | RF (%) | PV (kWp) | WT (qty) | Inverter (kWp) | ESS (Model-qty) | NPC (M€) | Init. Cap. (k€) | ROI (%) | IRR (%) | PP (y) | LCOE (€/kWh) | Net Energy (kWh/y) | Emissions During Operation (tnCO2,eq/y) | gCO2,eq/kWh | |
| NO CF | CF | |||||||||||||||||
| Without Net Metering | 0 | Baseline | 100 | 0 | 1.62 | 0 | 0 | 0 | 0.360 | 1,093,280 | 2459.9 | 2250.0 | ||||||
| 18 | No autonomy | 62.7 | 33.1 | 258.233 | 185.0 | x | 4.30 | 183.8 | 37.0 | 41.0 | 2.4 | 0.254 | 659,848 | 1484.7 | 14.8 | 456.9 | ||
| 19 | 57.6 | 51.1 | 120.81 | 4 | 211.4 | x | 4.02 | 816.8 | 13.9 | 18.1 | 5.3 | 0.229 | 399,505 | 898.9 | 35.7 | 438.0 | ||
| 20 | 73.0 | 53.3 | 6 | x | 4.18 | 1073 | 10.4 | 14.2 | 6.5 | 0.238 | 368,870 | 830.0 | 9.7 | 572.7 | ||||
| 21 | 24 h autonomy | 12.4 | 79.8 | 850 | 215.3 | FB250 (2) | 2.45 | 1071 | 22.8 | 26.7 | 3.7 | 0.143 | 35,969 | 80.9 | 62.0 | 117.5 | ||
| 22 | 13.1 | 75.5 | 850 | 215.3 | FB30 (24) | 2.64 | 1053 | 21.8 | 25.7 | 3.9 | 0.161 | 136,334 | 306.8 | 63.1 | 151.8 | |||
| 23 | 12.0 | 86.7 | 850 | 215.3 | OPzS4620 (598) | 2.41 | 1310 | 19.5 | 23.4 | 4.3 | 0.138 | −80,475 | 0.0 | 43.4 | 49.6 | |||
| 24 | 12.0 | 86.7 | 850 | 215.3 | OPzS1905 (1488) | 2.67 | 1343 | 17.6 | 21.5 | 4.6 | 0.153 | −80,557 | 0.0 | 43.7 | 50.0 | |||
| 25 | 12.1 | 86.5 | 850 | 215.3 | OPzS4245 (638) | 2.65 | 1521 | 16.1 | 19.9 | 5.0 | 0.151 | −78,341 | 0.0 | 43.4 | 49.7 | |||
| 26 | 12.1 | 86.5 | 850 | 215.3 | OPzS1875 (1481) | 2.83 | 1485 | 15.5 | 19.2 | 5.1 | 0.162 | −78,124 | 0.0 | 43.5 | 49.7 | |||
| 27 | 10.4 | 88.9 | 770 | 2 | 954.7 | FB250 (2) | 2.37 | 1413 | 18.6 | 22.7 | 4.4 | 0.121 | −252,906 | 0.0 | 47.5 | 54.3 | ||
| 28 | 48 h autonomy | 8.8 | 91.2 | 1050 | 215.3 | FB250 (4) | 2.43 | 1716 | 15.7 | 19.5 | 5.07 | 0.147 | −71,496 | 0.0 | 66.1 | 75.6 | ||
| 29 | 10.1 | 89.9 | 1050 | 238.9 | FB30 (48) | 2.48 | 1681 | 15.7 | 19.5 | 5.07 | 0.150 | −57,430 | 0.0 | 66.9 | 76.5 | |||
| 30 | 6.0 | 94.0 | 964 | 221.7 | OPzS4620 (1196) | 2.96 | 2153 | 11.4 | 14.9 | 6.51 | 0.168 | −189,778 | 0.0 | 54.2 | 62.0 | |||
| 31 | 6.0 | 94.0 | 964 | 218.8 | OPzS1905 (2976) | 3.49 | 2218 | 9.3 | 12.6 | 7.52 | 0.198 | −185,543 | 0.0 | 54.7 | 62.5 | |||
| 32 | 5.8 | 94.2 | 964 | 252.5 | OPzS4245 (1276) | 3.41 | 2575 | 8.8 | 12 | 7.82 | 0.187 | −235,121 | 0.0 | 54.2 | 61.9 | |||
| 33 | 5.5 | 94.5 | 964 | 312.9 | OPzS1875 (2962) | 3.77 | 2502 | 7.8 | 10.9 | 8.47 | 0.195 | −317,088 | 0.0 | 55.4 | 63.3 | |||
| 34 | 5.8 | 94.2 | 1031 | 1 | 268.1 | FB250 (4) | 2.50 | 1917 | 14.2 | 17.9 | 5.47 | 0.141 | −195,919 | 0.0 | 58.3 | 66.7 | ||
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| Variable | Value | NM (24 h) | NM (48 h) | Non-NM (24 h) | Non-NM (48 h) |
|---|---|---|---|---|---|
| LCOE (€) | Δ (%) | LCOE (€) | Δ (%) | ||
| Discount Rate | 4% | 0.0608 | −24.5% | 0.0968 | −20.0% |
| 6% | 0.0722 | −10.3% | 0.108 | −10.7% | |
| 8% (Base) | 0.0805 | 0% | 0.121 | 0% | |
| Inflation Rate | 1% | 0.0922 | 14.5% | 0.129 | 6.6% |
| 1.50% | 0.0885 | 9.9% | 0.125 | 3.3% | |
| 2% (Base) | 0.0805 | 0% | 0.121 | 0% | |
| Daily Load | 1497.6 kWh | 0.0988 | 22.7% | 0.0859 | −29.0% |
| 2246.5 kWh | 0.0933 | 15.9% | 0.0986 | −18.5% | |
| 2995.3 kWh | 0.0805 | 0% | 0.121 | 0% | |
| 3744.1 kWh | 0.137 | 70% | 0.15 | 36% | |
| 4492.9 kWh | 0.174 | 116% | 0.174 | 66% | |
| Solar Radiation | 2.64 kWh/m2 | 0.298 | 270.2% | 0.241 | 99.2% |
| 4.75 kWh/m2 | 0.198 | 146.0% | 0.167 | 38.0% | |
| 5.28 kWh/m2 | 0.0805 | 0% | 0.121 | 0% | |
| 5.81 kWh/m2 | 0.0761 | −5% | 0.102 | −24% | |
| 6.60 kWh/m2 | 0.0778 | −3% | 0.101 | −25% |
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© 2026 by the author. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Sifakis, N. Resilient Control Strategies for Urban Energy Transitions: A Robust HRES Sizing Typology for Nearly Zero Energy Ports. Processes 2026, 14, 549. https://doi.org/10.3390/pr14030549
Sifakis N. Resilient Control Strategies for Urban Energy Transitions: A Robust HRES Sizing Typology for Nearly Zero Energy Ports. Processes. 2026; 14(3):549. https://doi.org/10.3390/pr14030549
Chicago/Turabian StyleSifakis, Nikolaos. 2026. "Resilient Control Strategies for Urban Energy Transitions: A Robust HRES Sizing Typology for Nearly Zero Energy Ports" Processes 14, no. 3: 549. https://doi.org/10.3390/pr14030549
APA StyleSifakis, N. (2026). Resilient Control Strategies for Urban Energy Transitions: A Robust HRES Sizing Typology for Nearly Zero Energy Ports. Processes, 14(3), 549. https://doi.org/10.3390/pr14030549
