Utility-Scale Storage Integration in the Maltese Medium-Voltage Distribution Network
Abstract
:1. Introduction
2. Methodology
2.1. Analysis of the Net-Demand and Selection of Case Scenario
2.1.1. Analysis of the Net-Demand
2.1.2. Selection of Case Scenario
2.2. Gozo Network Simulation Model
2.2.1. Slack Bus
2.2.2. Decentralized PV Generation Capacity
2.2.3. On-Load Tap Changer (OLTC)
2.3. Utility-Scale Battery Storage Systems
- The self-discharge rate was considered negligible.
- Round-trip energy efficiency is 85% (includes the battery and power electronic converter efficiencies).
- The efficiency of the power electronic converter does not vary with the output power from the BESS.
- The state of charge (SoC) varies between 20% and 80% to prolong the lifetime of the battery banks.
- Other battery-specific characteristics were not considered.
- The BESS is assumed to be discharged at the start of the simulation (initial SoC of 20%).
2.3.1. Utility-Scale BESS Sizing Strategy for Peak Shaving Functionality
2.3.2. Centralized Utility-Scale Storage Strategy
2.3.3. Decentralized Utility-Scale Storage Strategy
3. Simulation Results
3.1. OLTC Tap Positions
3.2. BUF Sizing Strategy
3.2.1. Net Demand Characteristics
3.2.2. Xewkija DC Voltage Profile
3.2.3. Substation Voltage Profiles
3.3. Zero Reverse Power at Xewkija DC
3.3.1. Net Demand Characteristics
3.3.2. Xewkija DC Voltage Profile
3.3.3. Substation Voltage Profiles
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Substation | BESS (MWh) |
---|---|
A | 1.800 |
B | 0.030 |
C | 0 |
D | 0 |
E | 0.040 |
F | 0.005 |
G | 0 |
H | 0 |
I | 0.100 |
J | 0.060 |
K | 0.100 |
L | 0.002 |
M | 1.400 |
N | 0 |
O | 0 |
P | 0.110 |
Q | 0.100 |
R | 1.500 |
S | 0.010 |
T | 0.010 |
U | 0.040 |
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Micallef, A.; Spiteri Staines, C.; Cassar, A. Utility-Scale Storage Integration in the Maltese Medium-Voltage Distribution Network. Energies 2022, 15, 2724. https://doi.org/10.3390/en15082724
Micallef A, Spiteri Staines C, Cassar A. Utility-Scale Storage Integration in the Maltese Medium-Voltage Distribution Network. Energies. 2022; 15(8):2724. https://doi.org/10.3390/en15082724
Chicago/Turabian StyleMicallef, Alexander, Cyril Spiteri Staines, and Alan Cassar. 2022. "Utility-Scale Storage Integration in the Maltese Medium-Voltage Distribution Network" Energies 15, no. 8: 2724. https://doi.org/10.3390/en15082724
APA StyleMicallef, A., Spiteri Staines, C., & Cassar, A. (2022). Utility-Scale Storage Integration in the Maltese Medium-Voltage Distribution Network. Energies, 15(8), 2724. https://doi.org/10.3390/en15082724