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| Brand Name : | RESKY |
| Model Number : | LP602540 |
| Certification : | CE, RoHS, MSDS, Un38.3, IEC62133 available |
| Price : | Negotiable |
| Payment Terms : | T/T,Western Union |
| Supply Ability : | 50000pcs/day |
| Delivery Time : | 7-10days |
Li-ion battery cell 602540 600mAh 3.7V 2.22wh Rechargeable Power lithium ion Batteries For wearable devices
| Item | Specification |
|---|---|
| Battery Type | 3.7V 600mAh LiPo battery |
| Charge Voltage | 4.2V |
| Nominal Voltage | 3.7V |
| Nominal Capacity | 600mAh (0.2C Discharge) |
| Charge Current | Standard: 0.5C Rapid: 1.0C |
| Standard Charging Method | 0.5C CC charge to 4.2V, then CV charge till current ≤0.05C |
| Charging Time | Standard: 2.75 hours Rapid: 2 hours |
| Max. Charge Current | 1.0C |
| Max. Discharge Current | 1.0C |
| Discharge Cut-off Voltage | 2.75V (0.2C) |
| Operating Temperature | Charging: 0°C ~45°C Discharging: 0°C ~45°C |
| Storage Temperature | -10°C ~ +45°C |
| Dimensions | Length: 40±2mm Width: 25±0.5mm Thickness: 6±0.2mm |
| Drop Test | 1m drop onto concrete twice - no fire, no leakage |
| Cycle Life | ≥500 cycles |
Main Features for Li(NiCoMn)O₂ and LiFePO4 batteries:
1. Safety: The Absolute Advantage of Lithium Iron Batteries
The cathode material (such as NCM) in ternary lithium polymer
batteries, when heated above 200°C, rapidly releases oxygen and
reacts with the electrolyte, causing thermal runaway (fire and
explosion). Therefore, it must be used with a BMS (battery
management system) (precisely controlling charge and discharge
voltage and temperature) and an explosion-proof structure.
The lithium iron phosphate cathode in lithium iron batteries has a
stable structure and a decomposition temperature exceeding 500°C.
It does not release oxygen during decomposition. Even if punctured,
squeezed, or overcharged, it only causes a "bulge," with virtually
no fire risk. This makes it the preferred choice for applications
with extremely high safety requirements (such as energy storage and
low-speed vehicles).
2. Energy Density: Ternary Lithium Meets the Demand for "Light,
Thin, and High Capacity"
The high energy density of ternary lithium allows it to provide
greater capacity within a limited weight/volume.
As a result, ternary lithium is widely used in consumer electronics
(mobile phones, headphones, laptops) and high-end electric vehicles
(which strive for long driving range). Lithium-ion batteries have a
low energy density and are more suitable for scenarios that don't
demand extreme capacity/range, but rather require a long lifespan
and low cost (such as energy storage power stations and low-speed
electric vehicles).
3. Cycle Life and Low-Temperature Performance: Key Considerations
for Scenario Adaptation
Cycle Life: The long cycle life of lithium-ion batteries (over
2,000 cycles) makes them suitable for scenarios with long-term,
high-frequency use, such as home energy storage power stations
(required for over 10 years) and shared electric vehicles (with an
average daily charge and discharge cycle of once, for over 5
years). Ternary lithium batteries, on the other hand, have a
shorter cycle life (around 1,000 cycles) and are more suitable for
consumer electronics with a 2-3 year replacement cycle.
Low-Temperature Performance: Ternary lithium batteries perform
better in cold regions (such as northern winter). When used in
electric vehicles, the range degradation of ternary lithium
batteries is 20%-30% lower than that of lithium-ion batteries.
However, lithium-ion batteries require additional heating elements
for low-temperature applications, which increases cost and size.
Therefore, they are more suitable for warmer regions or indoor
applications (such as indoor energy storage).
Applications:
Smart wearable devices (smartwatches, Bluetooth earphones, early
education devices)
Wireless electronics (mice, vibrators, night lights)
Beauty devices (rechargeable beauty equipment)
Medical monitors and portable medical devices
Other small digital products requiring high safety standards
Product Pictures:





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