MECC High Voltage Battery 314AH, the epitome of safety and reliability in the world of energy storage. This cutting-edge lithium iron phosphate battery system is specifically designed to cater to the demanding needs of UPS, home storage, and industrial as well as commercial energy storage fields. Whether you're looking to secure uninterrupted power supply, optimize home energy consumption, or enhance industrial energy capabilities, this battery energy storage system delivers the solution you need with unmatched versatility and reliability.
Detailed Product Features:
1. High-Efficiency LiFePO₄ Battery Technology
Delivers a long lifespan, enhanced safety, and high energy density
Maintains a 90% Depth of Discharge (DoD) for maximum energy utilization
2. Discharge and Charge Control
Enhanced control mechanisms allow for efficient management of both charging and discharging processes, optimizing performance and extending battery life.
3. Standardized Module Design
The system's modular design promotes ease of installation and scalability, allowing for straightforward integration into various energy storage applications. Up to 15 battery racks can be managed in parallel.
4. Safe, Reliable, and Long Life
Built with safety at its forefront, our battery system offers unmatched reliability and longevity, ensuring peace of mind for all users.
5. Flexible Capacity
The system's design supports capacity expansion, enabling customization to meet specific energy requirements, providing a tailored solution for every user.

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MODEL |
MECC153.6-314AH |
MECC204.8-314AH |
MECC256.0-314AH |
MECC307.2-314AH |
MECC358.4-314AH |
MECC409.6-314AH |
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Battery Type |
LiFePO4(LFP) |
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Battery Module |
51.2V 314AH |
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Number of Modules |
3PCS |
4PCS |
5PCS |
6PCS |
7PCS |
8PCS |
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Nominal Voltage(V) |
153.6V |
204.8V |
256.0V |
307.2V |
358.4V |
409.6V |
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Nominal Capacity(KWH) |
48KWH |
64KWH |
80KWH |
96KWH |
112KWh |
128KWH |
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Dimension(mm) |
575*800*1250 |
575*800*1530 |
575*800*1800 |
1080*800*1250 |
1080*800*1250 |
1080*800*1530 |
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Weight(kg) |
396 |
530 |
665 |
795 |
930 |
1060 |
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Operating Voltage |
134-172.8V |
179-230.4V |
224-288V |
268-345.6V |
313.6-403.2V |
358-460.8V |
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MAX Charge/Discharge Current |
200A(MAX); 100A(Recommended) |
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Remmended Charge/ |
200A(MAX); 100A(Recommended) |
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Cycle Life |
>6000. 25°C |
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BMS |
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BMS Monitoring PRM |
SOC, System voltage, current, cell voltage,cell temperature, module temperature |
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Communication |
CAN/RS-485/WIFI |
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GENERAL |
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Operating Temp Range |
-10℃-50℃ |
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Transport or Storage |
-20℃-60℃ |
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Humidity |
15% - 85% (No Condensing) |
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Installation |
Floor Installation |
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Cases


FAQ
What makes this system particularly suitable for off-grid and microgrid applications?
The system's off-grid optimized design includes black start capability and seamless transition between grid-connected and islanded modes. The high-voltage operation (up to 716.8V) reduces line losses in extended microgrid installations. With 280Ah deep-cycle cells, it provides stable power for remote communities or industrial sites. The system can integrate with diverse generation sources (solar, wind, diesel) through its flexible voltage range, making it a complete microgrid solution in a single rack-mounted package.
How does the battery management system (BMS) ensure optimal performance and longevity?
Our advanced BMS provides cell-level monitoring with ±10mV voltage accuracy and ±1°C temperature precision across all 51.2V-716.8V configurations. It implements active cell balancing (up to 2A balancing current) to maintain module uniformity. The system includes predictive analytics that forecast cell aging based on usage patterns, enabling proactive maintenance. For the 280Ah cells, the BMS maintains optimal operating parameters that extend cycle life beyond 10,000 cycles at 80% depth of discharge in typical applications.
What cooling strategies are employed in the rack-mounted design?
The system utilizes passive cooling through strategically placed ventilation in the white enclosure, supplemented by intelligent fan-assisted airflow when needed. The high-voltage architecture (51.2V-716.8V) inherently generates less current-induced heat compared to lower voltage systems. For the 280Ah cells, we've implemented advanced thermal interface materials that promote even heat distribution. The BMS continuously monitors temperature gradients across all modules, adjusting charge/discharge rates to maintain optimal thermal conditions.
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