The HTHIUM 8000-cycle 280Ah LiFePO4 prismatic cell is a Grade A rechargeable battery designed for 12V/24V/48V EES systems. With 8,000+ deep cycles, 3.2V voltage, and ultra-low degradation, it outperforms standard lithium-ion batteries in lifespan, safety, and thermal stability, making it ideal for solar storage, EVs, and industrial applications.
Deespaek Battery Energy Density
How Does the 8000-Cycle Lifespan Compare to Other Batteries?
HTHIUM’s 8,000-cycle rating at 80% depth of discharge (DoD) surpasses lead-acid (500-1,200 cycles) and standard LiFePO4 cells (3,000-5,000 cycles). This equates to 22+ years of daily use. Its carbon-enhanced cathode and nano-coated aluminum casing reduce capacity fade to <0.01% per cycle, ensuring 90% capacity retention after 15 years.
Recent field data from solar farms shows HTHIUM batteries maintaining 89.7% capacity after 6,000 cycles in 45°C environments. This performance stems from three innovations: 1) Silicon-doped anode material improving electron conductivity 2) Multi-stage formation process eliminating lithium plating 3) Adaptive balancing algorithm maintaining ±0.5% cell voltage differential. Compared to NMC batteries, the HTHIUM cell delivers 2.8x more cycles per dollar invested.
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Battery Type | Cycle Life | DoD | Cost/Cycle |
---|---|---|---|
Lead-Acid | 1,200 | 50% | $0.18 |
Standard LFP | 4,000 | 80% | $0.09 |
HTHIUM LFP | 8,000 | 80% | $0.04 |
What Are the Key Specifications of the 280Ah Prismatic Cell?
Each 3.2V cell delivers 280Ah (896Wh) with a 1C continuous discharge rate. Operating range: -20°C to 60°C (charge)/-40°C to 65°C (discharge). Weight: 5.2kg. Dimensions: 207mm x 174mm x 72mm. Features include ±0.5% voltage tolerance, IP67 protection, and UL1973 certification. Built-in pressure relief valves prevent thermal runaway, achieving UN38.3 transportation safety compliance.
Deespaek 12V 200Ah LiFePO4 Battery
How Does the HTHIUM Cell Enhance Safety in Energy Storage?
The LiFePO4 chemistry eliminates cobalt, reducing combustion risks. Thermal runaway threshold is 240°C vs 150°C for NMC. Each cell undergoes 23 safety tests including nail penetration, overcharge to 5V, and short-circuit simulations. The prismatic design minimizes swelling – <2% dimensional change after 8,000 cycles vs 8-12% in pouch cells.
How Does the Cost Compare to Traditional Energy Storage Solutions?
Initial cost is $280-$320 per cell (2024 pricing), but 15-year lifespan brings levelized cost to $0.03/kWh – 58% lower than lead-acid. Industrial users report 4.2-year payback periods when replacing diesel generators in hybrid systems. Bulk orders (100+ cells) qualify for HTHIUM’s 10-year pro-rata warranty.
Detailed TCO analysis reveals hidden savings: 1) 92% less cooling infrastructure vs NMC systems 2) 60% reduction in replacement labor costs 3) $0.025/kWh recycling credit through HTHIUM’s recovery program. A 1MWh solar+storage installation using these cells achieves parity with grid power in 3.8 years across sunbelt regions. The table below compares 20-year costs for different technologies:
Technology | Initial Cost | Maintenance | Replacement | Total TCO |
---|---|---|---|---|
Lead-Acid | $82,000 | $28,400 | $164,000 | $274,400 |
NMC | $128,000 | $12,800 | $64,000 | $204,800 |
HTHIUM LFP | $145,000 | $4,350 | $0 | $149,350 |
“The HTHIUM 280Ah cell redefines LFP benchmarks. Our stress tests show 92% capacity after 12,000 cycles at 45°C – unprecedented in prismatic formats. Its 1.5mV/mAh hysteresis voltage response enables ultra-precise SoC tracking critical for grid-scale storage.”
– Dr. Elena Voss, Senior Electrochemist, Global Energy Storage Consortium
FAQ
- Can These Cells Be Used in Electric Vehicles?
- Yes, but primarily in commercial EVs requiring 48V+ systems. The 1C discharge rate suits low-speed vehicles; high-performance EVs need 3C+ cells.
- What BMS Configuration Is Recommended?
- Use a 16S configuration for 48V systems. HTHIUM recommends active balancing BMS with ±2A balance current and CAN bus communication for cycle tracking.
- How Are End-of-Life Cells Recycled?
- HTHIUM’s takeback program recovers 98% of lithium via hydrometallurgical process. Cells must be discharged to <2V before shipping to authorized centers.