Dongguan Everwin Tech Co., Limited michael@ewtbattery.com 86-755-8175-2844
Product Details
Place of Origin: China
Brand Name: EWT
Certification: MSDS
Model Number: LFP 24V 60AH
Payment & Shipping Terms
Minimum Order Quantity: 10
Price: 287USD/pc for 10-100pcs
Packaging Details: carton box+paper box
Delivery Time: 7-12 delivery days
Payment Terms: T/T
Supply Ability: 100pcs for 25-30 days
Features: |
Long Cycle Life |
Type: |
LiFePO4 24V 60Ah |
Max Discharge Current: |
50A Continuous |
Usage: |
Power Storage |
Environmental Impact: |
Low |
Discharging Rate: |
High |
Shipping: |
Air Or Sea |
Shape: |
Prismatic |
Charging Time: |
Fast |
Maximum Discharge Current: |
60A |
Features: |
Long Cycle Life |
Type: |
LiFePO4 24V 60Ah |
Max Discharge Current: |
50A Continuous |
Usage: |
Power Storage |
Environmental Impact: |
Low |
Discharging Rate: |
High |
Shipping: |
Air Or Sea |
Shape: |
Prismatic |
Charging Time: |
Fast |
Maximum Discharge Current: |
60A |
EWT 24V 60AH Lifepo4 Battery Pack Electric Motorcycles Pack
species |
Lithium Iron Phosphate |
Voltage |
32700-24V |
capacity |
60AH |
Batteries |
IFR32700 3.2V 6Ah |
size |
195*131*185mm |
weight |
12KG |
Maximum charging current |
30A |
Maximum discharge current |
60A |
Display screen |
No |
Communication support |
Bluetooth |
In order to more accurately reflect the electrode voltage of a lithium battery, it can be expressed by the change of Gibbs free energy ΔG, or by the lithium chemical potential difference (μCLi, μALi) between the positive and negative electrodes:
Formally, the chemical potential of lithium can be divided into two parts: the electrochemical potential Δμe and the ionic chemical potential ΔμLi+, which further describe the change of Gibbs free energy in the positive and negative electrodes, as well as its relationship with electron and ion exchange. It is generally believed that electrons play a dominant role, for example, by substituting transition metals in olivine materials to produce transition metal ions with higher ionization potentials, a higher average voltage can be obtained, which is supported by many reports (J. Electrochem. Soc., 144, 1188 (1997); J.Phys.Chem.B,108,16093(2004).). To gain insight into the fundamental processes of electron and ion exchange in electrodes and their associated effects on battery performance, Ceder et al. developed the first first-principles calculations (Phys. Rev. B, 56(3), 1354(1997).). However, until now, there has not been a single experiment that can clearly describe the effect of electron-ion interaction on battery voltage.
Voltage is a key parameter that determines the performance of lithium-ion batteries, and the higher the average voltage, the higher the energy and power density. Theoretically, the potential of the lithium intercalation electrode is very related to the chemical potential of the electrons and ions, as well as the difference in the voltage of the battery, but the precise contribution of the electrons and lithium ions to the voltage remains unclear because these quantities cannot be obtained experimentally.