| Image | Part Number | Description / PDF | Quantity | Rfq |
|---|---|---|---|---|
|
Jauch Quartz |
BATT LITH POLY 1S1P 3150MAH 3.7V |
760 |
|
|
|
LP341018JSY + PCM + 2 WIRES 50MM Jauch Quartz |
BATT LITH POLY 1S1P 35MAH 3.7V |
214 |
|
|
|
Jauch Quartz |
BATT LITH ION 3.6V 6.5AH |
397 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 1900MAH 3.7V |
662 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 600MAH 3.7V |
1232 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 430MAH 3.7V |
709 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 630MAH 3.7V |
2137 |
|
|
|
LP503562JB + PCM + 2 WIRES 50MM Jauch Quartz |
BATT LITH POLY 1S1P 1250MAH 3.7V |
973 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 980MAH 3.7V |
1243 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 650MAH 3.7V |
200 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 5000MAH 3.7V |
580 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 320MAH 3.7V |
346 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 880MAH 3.7V |
738 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 6000MAH 3.7V |
0 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 1350MAH 3.7V |
0 |
|
|
|
LI21700JS 1S1P + PCM + 2 WIRES 70MM Jauch Quartz |
BATT LITH ION 21700 W/LEADS |
938 |
|
|
|
LI14500J 1S1P + PCM + WIRE 850 MAH Jauch Quartz |
BATT LITH ION 1S1P 850MAH 3.6V |
665 |
|
|
|
Jauch Quartz |
BATT LITH POLY 1S1P 350MAH 3.7V |
561 |
|
|
|
LP501233JSY + PCM + 2 WIRES 50MM Jauch Quartz |
BATT LITH POLY 1S1P 170MAH 3.7V |
122 |
|
|
|
Jauch Quartz |
BATT LITH ION 18650 PROTECTED |
715 |
|
Rechargeable batteries (secondary batteries) are electrochemical energy storage devices that can be repeatedly charged and discharged through reversible chemical reactions. Unlike primary batteries, they form the backbone of modern energy storage systems, enabling portable electronics, electric vehicles (EVs), and renewable energy integration. Their ability to reduce long-term costs and environmental impact makes them critical in sustainable technology development.
| Type | Functional Characteristics | Application Examples |
|---|---|---|
| Lithium-ion (Li-ion) | High energy density (100-265 Wh/kg), low self-discharge, long cycle life (500-2000 cycles) | Smartphones, EVs, laptops |
| Nickel-Metal Hydride (NiMH) | Moderate energy density (60-120 Wh/kg), environmental friendliness, memory effect resistance | Hybrid vehicles, digital cameras |
| Lead-Acid | Low cost, high surge current capability, heavy weight | Automotive starters, backup power systems |
| Lithium Iron Phosphate (LiFePO4) | Exceptional thermal stability, long lifespan (2000+ cycles), lower energy density | Electric buses, solar storage, marine applications |
Typical rechargeable battery cells consist of:
Cell designs include cylindrical (18650 format), prismatic, and pouch configurations with integrated protection circuits.
| Parameter | Description | Importance |
|---|---|---|
| Energy Density | Wh/kg or Wh/L | Determines runtime and weight |
| Charge Cycle Life | Number of full discharge/charge cycles | Dictates longevity and cost-effectiveness |
| Internal Resistance | Measured in milliohms | Affects power output and efficiency |
| Self-Discharge Rate | Monthly capacity loss percentage | Storage performance indicator |
| Charging Efficiency | Percentage of energy retained during charging | Impacts operational costs |
| Manufacturer | Representative Product | Chemistry Type |
|---|---|---|
| Panasonic | NCR18650B | Lithium-ion |
| BYD | Blade Battery | Lithium Iron Phosphate |
| Samsung SDI | INR18650-30Q | Nickel Cobalt Manganese (NCM) |
| Exide Technologies | Chloride SLA | Lead-Acid |
| LG Chem | LGDBHE21865 | Lithium-ion Polymer |
Key considerations:
Example: Select LiFePO4 for solar storage systems requiring 5000+ cycles and wide temperature tolerance.