Batteries & Charging
Li-ion, LiFePO4, SLA packs, chargers and battery management.
Also searched as: lifepo4lithium batterybmsbattery chargersla battery
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1/2 AA Lithium-ion Battery
Battery Chemistry: Lithium-ionSize: 1/2 AA
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120V Battery Charger
Voltage: 120V
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Automatic Charger/Battery Maintainer
Voltage: 12 & 24VDC
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Automatic Charger/Battery Maintainer
Voltage: 12 & 24VDC
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Automotive Battery Charger
Voltage: 12VDC
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C Lithium-ion Battery Button Tab Terminal
Battery Chemistry: Lithium-ionSize: C
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Lithium-Ion Battery
Battery Size Compatibility: Streamlight SL-B26Charging Time: 3.50 HoursMaximum Number of Batteries: 2Voltage: 3.7V
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On-board Battery Charger
Amperage: 5AVoltage: 12V
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Replacement LiFePO4 Battery
Chemistry: LiFePO4
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Specialty Battery 3.6V Lithium
Battery Chemistry: LithiumVoltage: 3.6V
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Specialty Battery 3.6V Lithium
Battery Chemistry: LithiumVoltage: 3.6V
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Two-bank On-board Battery Charger
Amperage: 10-ampsBanks: TwoVoltage: 12-volt
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About batteries & charging
The Batteries & Charging category encompasses energy storage and power management solutions for various applications. It primarily includes lithium-ion (Li-ion) and lithium iron phosphate (LiFePO4) battery packs, sealed lead-acid (SLA) batteries, and associated charging and battery management systems (BMS). Li-ion and LiFePO4 packs are characterized by their nominal voltage (e.g., 3.7V per cell for Li-ion, 3.2V per cell for LiFePO4), capacity in Ampere-hours (Ah), and discharge/charge C-rates. SLA batteries are typically rated by voltage (e.g., 6V, 12V) and Ah capacity. BMS units are crucial for lithium chemistries, providing overcharge/discharge protection, cell balancing, and temperature monitoring, often specified by cell count (e.g., 3S, 4S, 16S) and continuous discharge current rating. Chargers are selected based on battery chemistry, nominal voltage, and maximum charge current, with features like constant current/constant voltage (CC/CV) profiles being standard for lithium types. Physical dimensions (length, width, height) and terminal types (e.g., F1, F2 for SLA; various connectors for Li-ion/LiFePO4) are critical for integration. Enclosure ratings (e.g., IP65) may also be relevant for environmental protection.
How to choose
How to Choose Batteries & Charging Components
1. What is the required nominal voltage and capacity (Ah)? This determines the number of cells in series (voltage) and parallel (capacity) for lithium chemistries, or the base voltage and Ah for SLA. Trade-offs include size, weight, and available power. 2. What are the peak and continuous discharge current requirements? This dictates the C-rate of the battery and the current rating of the BMS. Higher currents often mean larger or more robust cells. 3. What battery chemistry is most suitable? Li-ion offers high energy density, LiFePO4 provides longer cycle life and enhanced safety, while SLA is cost-effective for less demanding applications. Each has specific charging requirements. 4. What are the physical space constraints and environmental conditions? This influences battery pack form factor, terminal type, and any necessary IP ratings for the enclosure. Consider operating temperature ranges.