Selection: 1.93 MWh Battery Capacity
Rationale: A 1.9MWh battery capacity is selected based on the island s daily power consumption and emergency backup needs. This capacity covers off-peak electricity demands and provides several hours to half a day of continuous power during outages, ensuring critical operations remain uninterrupted.
Benefits: This setup supports a reliable power supply during emergencies and non-peak periods, enhancing the island’s resilience.
Advantage: The 1.93 MWh capacity ensures that the island can maintain critical functions without solely relying on the traditional grid, thereby improving energy security and reliability.
Selection: 1 MW PCS Power Configuration
Rationale: The PCS (bidirectional converter) is configured with a 1 MW integrated cabinet, designed to enable seamless grid and off-grid switching. It receives dispatch commands from the Energy Management System (EMS) and provides fast response capabilities for charging and discharging in self-consumption mode, island protection, and high low voltage ride-through capabilities.
Benefits: The 1 MW PCS ensures rapid and efficient power conversion, enhancing energy management flexibility and operational stability.
Selection: 1 MW Solar Inverter Configuration
Rationale: The maximum configuration of a 1 MW solar inverter, using an AC-coupling solution, is based on the island s sunlight intensity and available rooftop area. With an expected 5 hours of sunlight per day and an 80% solar efficiency rate, the system can generate approximately 4 MWh daily. This setup efficiently harnesses solar energy, reducing reliance on the grid and charging batteries during the day for nighttime use.
Benefits: The 1 MW solar power capacity maximizes the use of renewable resources, significantly decreasing grid dependency and operational costs.
Advantage: This configuration ensures effective solar energy utilization, optimizing the island s energy independence and sustainability.
Battery Storage System | |||||||
Cell Type | System Battery Configuration | Rated Battery Capacity(kWh) | Battery Voltage Range(V) | BMS Communication Interface | BMS Communication Protocol | ||
3.2V/314Ah |
240S1P*8 | 241.2*9 | 600~876 | RS485,Ethernet | Modbus TCP | ||
AC Output | |||||||
Rated Power(MWh) | Current Distortion Rate | DC Component | Grid Voltage(V) | Power Factor | Power factor Adjustable Range | Rated Frid Frequency(Hz) | Grid Frequency Range(Hz) |
1 | < 3 % (at rated power) | < 0.5 % (at rated power) | 400 | > 0.99 (at rated power) | 1 (overrun) to 1 (lag) | 60 | 55~65 |
MPPT | |||||||
Rated Power(kW) | Full load MPPT range(V) | Operating Voltage Range(V) | Starting Voltage(V) | Rated Input Voltage(V) | Max. short-circuit Current of Single MPPT(A) | Output Voltage Range(V) | Power Factor |
100*10 units | 180~1000 | 200~1000 | 200 | 600 | 52.2 | 400 | 0.8 ahead ~ 0.8 lagging |
The advanced Battery Management System (BMS) monitors voltage, current, and temperature to ensure optimal performance and longevity. Predictive algorithms provide early warnings of battery aging for proactive maintenance.
A high-efficiency cooling system with optimized airflow maintains safe battery temperatures in extreme heat, while smoke detectors and heptafluoropropane fire suppression ensure comprehensive safety.
The system enables seamless integration with photovoltaic panels and diesel generators, supporting versatile energy switching for enhanced stability and reliability in power supply.
The 500kW photovoltaic system paired with 1.9MWh storage is designed based on the store s actual energy needs and local sunlight conditions, avoiding unnecessary costs from over configuration.
The 1MW PCS, photovoltaic inverter, and STS module provide versatile functions such as charging, discharging, and grid interaction. This setup mitigates the impact of diesel generator integration and improves power quality, ensuring high system reliability and rapid emergency response.
The combination of photovoltaic and energy storage reduces operational costs and carbon footprint, aligning with green energy trends.