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Fast Charging LifePo4 24V 25AH Battery Pack for Sewer Pipe Inspection Robot

Categories 24V Lithium Iron Phosphate Battery
Brand Name: EWT
Model Number: LFP 24V 25AH
Certification: UL UN38.3 IEC62133 CE ISO9001
Place of Origin: China
MOQ: 100
Price: 110USD/pc for 10-100pcs
Payment Terms: T/T
Supply Ability: 50000/DAY
Delivery Time: 7-12 delivery days
Packaging Details: carton box+paper box
Rechargeable: Yes
Operating Temperature: Wide
Anode Material: LiFePO4
Energy Density: High
Ship Method: By sea by air
Charging Time: Fast
Air Shipping: DHL UPS FEDEX
Batteries: LiFePO4 24V 25Ah
Package: Individual Box Package
Certifications: CE, UL, RoHS
Discharge Rate: Low
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Fast Charging LifePo4 24V 25AH Battery Pack for Sewer Pipe Inspection Robot

LifePo4 24V 25AH Battery Pack For Sewer Pipe Inspection Robot


species

Lithium Iron Phosphate


Voltage

32700-24V

capacity

25AH

Batteries

IFR32700 3.2V 6Ah

size

195*131*185mm

weight

7KG

Maximum charging current

20A

Maximum discharge current

50A

Display screen

No

Communication support

Bluetooth

What is the essence of the average voltage of lithium batteries? How to improve?


Generally speaking, the higher the specific capacity of the electrode, or the higher the average battery voltage, it is undoubtedly beneficial to the improvement of battery energy density. where the average cell voltage is determined by the free enthalpy of the lithium-ion exchange reaction, which includes the intercalation and disengagement of the lithium ions on the active electrode material. For ordinary cathode materials, the electrode reaction appears to be a redox reaction at first glance, however, this view does not take into account the interaction of electrons and ions in the material. It is because of these interactions that the electronic state of the transition metal ions involved in the reaction depends on the degree of lithium ion intercalation.


In view of the lack of understanding of the average voltage of batteries in traditional methods, in this paper, Professor Wolfram Jaegermann of the Technical University of Darmstadt, Germany, proposes a new method to analyze the average electrode potential of batteries. As shown in the figure above, the schematic diagram of the Fermi level and the density of states (DOS) of the electrode can be seen that under normal conditions, the Fermi level of the cathode material is located in the TM-3d derivative band and moves with the change of the charge state, and its displacement is related to the corresponding displacement of the electrochemical potential. However, the information obtained from this diagram alone is also incomplete, as it does not take into account the difference between the lithium-ion chemical potential in lithium metal and other anodes.

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