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Lithium-iron-phosphate (LiFePO4 or LFP) is the safest of the mainstream li-ion battery types. The nominal voltage of a LFP cell is 3,2V (lead-acid: 2V/cell). A 12,8V LFP battery therefore consists of 4 cells connected in series; and a 25,6V battery consists of 8 cells connected in series.
A LFP battery does not need to be fully charged. Service life even slightly improves in case of partial charge instead of a full charge. This is a major advantage of LFP compared to lead-acid. Other advantages are the wide operating temperaturerange, excellent cycling performance, low internal resistance and high efficiency (see below).
LFP is therefore the chemistry of choice for very demanding applications.
Efficient
In several applications (especially off-grid solar and/or wind), energy efficiency can be of crucial importance. The round trip energy efficiency (discharge from 100% to 0% and back to 100% charged) of the average lead-acid battery is 80%.
The round trip energy efficiency of a LFP battery is 92%.
The charge process of lead-acid batteries becomes particularly inefficient when the 80% state of charge has been reached, resulting in efficiencies of 50% or even less in solar systems where several days of reserve energy is required (battery operating in 70% to 100% charged state).
In contrast, a LFP battery will still achieve 90% efficiency under shallow discharge conditions. Size and weight Saves up to 70% in space Saves up to 70% in weight
These batteries have integrated Cell Balancing, Temperature and Voltage control (BTV). Up to ten batteries can be paralleled and up to four batteries can be series connected (BTV’s are simply daisy-chained) so that a 48V battery bank of up to 2000Ah can be assembled. The daisy-chained BTV’s must be connected to a batterymanagement system (BMS).
LFP-BMS 12,8/60 |
LFP-BMS 12,8/90 |
LFP-BMS 12,8/160 |
LFP-BMS 12,8/200 |
|
---|---|---|---|---|
Rated voltage [V] | 12,8 | |||
Capacity @ 25°C [Ah] | 60 | 90 | 160 | 200 |
Capacity @ 0°C[Ah] | 48 | 72 | 130 | 160 |
Capacity @ -20°C [Ah] | 30 | 45 | 80 | 100 |
Energia w 25°C [Wh] | 768 | 1152 | 2048 | 2560 |
Cycle life | 2000 @80%DoD, 3000@70%DoD, 5000@50%DoD | |||
Maximum continuous discharge current [A] |
180 | 270 | 400 | 500 |
Recommended continuous discharge current [A] |
≤60 | ≤90 | ≤160 | ≤200 |
Maximum 10 s pulse current [A] |
600 | 900 | 1200 | 1500 |
End of discharge voltage [V] | 11 | |||
Operating temperature | -20°C +50°C (do not charge when battery temperature<0°C) | |||
Storage temperature | -45°C +70°C | |||
Humidity (non condensing) | 95% | |||
Protection class | IP54 | |||
Charge voltage [V] | 14 - 15 | |||
Float voltage [V] | 13,6 | |||
Maximum charge current [A] | 180 | 270 | 400 | 500 |
Recommended charge current [A] | ≤30 | ≤45 | ≤80 | ≤100 |
Dimensions (hxwxd) mm | 235/293/139 | 249/293/168 | 320/338/233 | 295/425/274 |
Weight [kg] | 12 | 16 | 33 | 42 |
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Lithium-iron-phosphate (LiFePO4 or LFP) is the safest of the mainstream li-ion battery types. The nominal voltage of a LFP cell is 3,2V (lead-acid: 2V/cell). A 12,8V LFP battery therefore consists of 4 cells connected in series; and a 25,6V battery consists of 8 cells connected in series.
A LFP battery does not need to be fully charged. Service life even slightly improves in case of partial charge instead of a full charge. This is a major advantage of LFP compared to lead-acid. Other advantages are the wide operating temperaturerange, excellent cycling performance, low internal resistance and high efficiency (see below).
LFP is therefore the chemistry of choice for very demanding applications.
Efficient
In several applications (especially off-grid solar and/or wind), energy efficiency can be of crucial importance. The round trip energy efficiency (discharge from 100% to 0% and back to 100% charged) of the average lead-acid battery is 80%.
The round trip energy efficiency of a LFP battery is 92%.
The charge process of lead-acid batteries becomes particularly inefficient when the 80% state of charge has been reached, resulting in efficiencies of 50% or even less in solar systems where several days of reserve energy is required (battery operating in 70% to 100% charged state).
In contrast, a LFP battery will still achieve 90% efficiency under shallow discharge conditions. Size and weight Saves up to 70% in space Saves up to 70% in weight
These batteries have integrated Cell Balancing, Temperature and Voltage control (BTV). Up to ten batteries can be paralleled and up to four batteries can be series connected (BTV’s are simply daisy-chained) so that a 48V battery bank of up to 2000Ah can be assembled. The daisy-chained BTV’s must be connected to a batterymanagement system (BMS).
LFP-BMS 12,8/60 |
LFP-BMS 12,8/90 |
LFP-BMS 12,8/160 |
LFP-BMS 12,8/200 |
|
---|---|---|---|---|
Rated voltage [V] | 12,8 | |||
Capacity @ 25°C [Ah] | 60 | 90 | 160 | 200 |
Capacity @ 0°C[Ah] | 48 | 72 | 130 | 160 |
Capacity @ -20°C [Ah] | 30 | 45 | 80 | 100 |
Energia w 25°C [Wh] | 768 | 1152 | 2048 | 2560 |
Cycle life | 2000 @80%DoD, 3000@70%DoD, 5000@50%DoD | |||
Maximum continuous discharge current [A] |
180 | 270 | 400 | 500 |
Recommended continuous discharge current [A] |
≤60 | ≤90 | ≤160 | ≤200 |
Maximum 10 s pulse current [A] |
600 | 900 | 1200 | 1500 |
End of discharge voltage [V] | 11 | |||
Operating temperature | -20°C +50°C (do not charge when battery temperature<0°C) | |||
Storage temperature | -45°C +70°C | |||
Humidity (non condensing) | 95% | |||
Protection class | IP54 | |||
Charge voltage [V] | 14 - 15 | |||
Float voltage [V] | 13,6 | |||
Maximum charge current [A] | 180 | 270 | 400 | 500 |
Recommended charge current [A] | ≤30 | ≤45 | ≤80 | ≤100 |
Dimensions (hxwxd) mm | 235/293/139 | 249/293/168 | 320/338/233 | 295/425/274 |
Weight [kg] | 12 | 16 | 33 | 42 |
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