Lithium Battery 3.7V Lithium Polymer Battery 3.2V LifePo4 Battery 1.2V Ni-MH Battery Button Coin Battery
3.7V Battery Pack 7.4V Battery Pack 11.1V Battery Pack 14.8V Battery Pack Other Battery Pack
Sino Science&Technology Battery Co.,ltd is a high-tech production enterprise which specialize in the R&D and production of Lifepo4 batteries,energy storage battery,portable UPS power supply,personalized customization lithium battery pack etc .
Environmental cylindrical 18650 21700 32700 26650 14500 18500 lithium ion rechargeable battery, LifePO4 battery,3.7V lithium polymer battery, NiMH battery , NiCD battery ,Lead acid battery,dry cell battery ,alkaline battery ,heavy duty battery, button cell battery etc. we devote to R&D,innovation ,production & sales
Shenzhen Green Power Energy Battery Co.,ltd specializes in a wide range of digital battery such as environmental cylindrical 18650 21700 32700 26650 14500 18500 lithium ion rechargeable battery, LifePO4 battery, 3.7V lithium polymer battery, NiMH battery, NiCD battery, dry cell battery, alkaline battery, heavy duty battery, button cell battery etc. we devote to R&D, innovation, production & sales. With automatic production machines we have been exported goods to all over the world over 15years. We have complete exported certificate such as KC, CE, UL, BSCI, ROHS, BIS, SGS, PSE etc
Dongguan Datapower New Energy Co.,ltd is a high-tech production enterprise which specialize in the R&D and production&sale of lithium polymer batteries,drone battery,airplane batteries &battery pack etc.
Anhui Seong-hee New Energy Technology Co.,ltd is a high-tech production enterprise which specialize in the R&D and production of primary batteries. And mainly produces and sells alkaline batteries & carbon zinc batteries. there are size AA, AAA, C, D, 9V etc
Guizhou STD Battery Co.,ltd is a high-tech production enterprise which specialize in the R&D and production & sale of lithium polymer batteries, drone battery, airplane batteries & battery pack etc.
release time:2023-11-21 Hits: Popular:AG11 battery
Ordinary lithium battery protection boards usually include control ICs, MOS switches, resistors, capacitors, and auxiliary devices FUSE, PTC, NTC, ID, memory, etc. Among them, the control IC controls the MOS switch to conduct under all normal conditions, making the battery cell and the external circuit conduct. When the battery cell voltage or circuit current exceeds the specified value, it immediately controls the MOS switch to turn off, protecting the safety of the battery cell.
Under normal conditions of the protection board, Vdd is high level, Vss, VM is low level, DO and CO are high level. When any parameter of Vdd, Vss, VM is changed, the level of DO or CO will change.
1. Normal state
Under normal conditions, both the "CO" and "DO" pins of N1 in the circuit output high voltage, and both MOSFETs are in a conductive state. The battery can freely charge and discharge. Due to the small conduction impedance of MOSFETs, which is usually less than 30 milliohms, their conduction resistance has little impact on the performance of the circuit.
2. Overcharge protection
The charging method required for lithium-ion batteries is constant current/constant voltage. In the initial stage of charging, it is constant current charging. As the charging process progresses, the voltage will rise to 4.2V (depending on the positive electrode material, some batteries require a constant voltage value of 4.1V), and then switch to constant voltage charging until the current decreases.
During the charging process of the battery, if the charger circuit loses control, it will cause the battery voltage to exceed 4.2V and continue constant current charging. At this time, the battery voltage will continue to rise. When the battery voltage is charged to exceed 4.3V, the chemical side reactions of the battery will intensify, leading to battery damage or safety issues.
In a battery with a protective circuit, when the control IC detects that the battery voltage reaches 4.28V (which is determined by the control IC, and different ICs have different values), the "CO" pin will change from high voltage to zero voltage, causing T1 to switch from conducting to off, thereby cutting off the charging circuit and preventing the charger from charging the battery, providing overcharging protection. At this point, due to the presence of T1's built-in body diode VD1, the battery can discharge external loads through this diode.
There is still a delay time between the control IC detecting that the battery voltage exceeds 4.28V and issuing the shutdown T1 signal. The length of this delay time is determined by C2 and is usually set to around 1 second to avoid misjudgment caused by interference.
3. Overdischarge protection
During the process of discharging external loads, the voltage of the battery will gradually decrease. When the battery voltage drops to 2.5V, its capacity has been fully discharged. If the battery continues to discharge the load at this time, it will cause permanent damage to the battery.
During the battery discharge process, when the control IC detects that the battery voltage is below 2.3V (this value is determined by the control IC, and different ICs have different values), its "DO" pin will change from high voltage to zero voltage, causing T2 to switch from conduction to shutdown, thereby cutting off the discharge circuit and preventing the battery from discharging the load again, providing over discharge protection. At this point, due to the presence of T2's built-in body diode VD2, the charger can charge the battery through this diode.
Due to the fact that the battery voltage cannot be further reduced in the over discharge protection state, it is required that the consumption current of the protection circuit be extremely small. At this point, the control IC will enter a low-power state, and the power consumption of the entire protection circuit will be less than 0.1 μ A. There is also a delay time between the time the control IC detects that the battery voltage is below 2.3V and the time it sends a shutdown T2 signal. The length of this delay time is determined by C2 and is usually set to around 100 milliseconds to avoid misjudgment caused by interference.
Read recommendations:
Low temperature needle punched 18,650 lithium ion battery
Introduction to lithium iron phosphate battery.501825 battery
Last article:solar energy storage lithium ion battery 15kwh 48v.Which is better, lithium battery or lead-acid bat
Next article:CR2354 battery.Tesla is secretly developing his own battery
Popular recommendation
701221 polymer battery company
2023-03-22601848 battery sales
2023-03-2218650 lithium ion battery
2023-03-22801620 battery manufacture
2023-03-22home solar energy storage lithium battery Product
2023-05-10Bluetooth headset
2022-09-22702535 600mAh 3.7V
2022-08-19Home energy storage battery GN-BOX2
2022-09-27Coin Battery CR 927
2022-09-27R03P
2023-03-27LR14
2022-11-2218650 2600mAh 3.7V
2022-08-196LR61
2022-07-01Electric vehicle lithium battery GN-24100-FAP
2022-09-27701224 145mAh 3.7V
2022-08-19LR726 battery
2023-06-25home solar energy storage lithium battery
2023-06-25AG1 battery
2023-06-251.2V Ni-MH Battery
2023-06-25Nickel Hydride No. 5 battery
2023-06-25Rechargeable Lithium Battery Intelligent Management System
2024-12-24Advantages of industrial lithium -ion batteries
2023-02-24How to perform daily maintenance on lithium batteries to extend their lifespan?
2024-09-18Environmental Friendliness of Cylindrical Lithium - Ion Batteries
2025-03-15Research on solar cell laser cutting technology experiment
2024-01-23Will lithium batteries explode for a long time?
2023-02-15Lithium battery improvement
2023-02-02Water lithium battery.LR754 battery
2023-07-04Low -temperature work battery introduction.lithium battery for solar energy storage system Processin
2023-04-24AG8 battery.Overview of power lithium battery industry technology: lithium-ion batteries will remain
2023-10-14