IEC62133 STYLE NIMH BATTERY Series, Battery Packs

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4
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Series
Capacity
Voltage - Rated
Size / Dimension
Structure
Termination Style
Number of Cells
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Battery Chemistry
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IEC62133 STYLE NIMH BATTERY
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ImageProduct DetailPriceAvailabilityECAD ModelTermination StyleNumber of CellsSeriesBattery ChemistryBattery Cell SizeVoltage - RatedCapacityStructureRechargeabilitySize / Dimension
BL3400C1865001S1PCAC
BATTERY PACK LI-ION 3.7V 18650
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Quantity
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PCB Symbol, Footprint & 3D Model
Wire Leads
1
IEC62133 STYLE NIMH BATTERY
Lithium-Ion
18650
3.7 V
3.2Ah
-
Yes
2.80" L x 0.75" W x 0.75" H (71.0mm x 19.0mm x 19.0mm)
BL3100C1865006S1PGQA
BATTERY PACK LI-ION 22.2V 18650
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Quantity
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PCB Symbol, Footprint & 3D Model
Wire Leads with Connector
6
IEC62133 STYLE NIMH BATTERY
Lithium-Ion
18650
22.2 V
3.1Ah
Front to Back, 1 Row x 6 Cells
Yes
4.37" L x 2.57" W x 0.98" H (111.0mm x 65.2mm x 25.0mm)
BL4800C2170001S1PCHS
BATTERY PACK LI-ION 3.6V 4.4AH
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Quantity
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PCB Symbol, Footprint & 3D Model
Wire Leads with Connector
1
IEC62133 STYLE NIMH BATTERY
Lithium-Ion
-
3.6 V
4.8Ah
-
Yes
0.86" Dia x 2.85" H (21.8mm x 72.5mm)
BL10200C186503S3PXQN
BATTERY PACK LI-ION 11.1V 18650
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Quantity
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PCB Symbol, Footprint & 3D Model
Wire Leads with Connector
6
IEC62133 STYLE NIMH BATTERY
Lithium-Ion
18650
11.1 V
10Ah
Side to Side, 2 Rows x 3 Cells
Yes
4.41" L x 1.65" W x 2.64" H (112.0mm x 42.0mm x 67.0mm)

About  Battery Packs

A battery pack is an assemblage of one or more individual battery cells that are connected and secured together to form a single unit with a particular shape and dimensions. They can be arranged in a series, parallel, or a combination of both to deliver the desired voltage, capacity, or power density. Battery packs are identified by various characteristics, including cell size, the number of cells, battery structure, chemistry, chargeability, capacity, and voltage rating. These features are critical in determining the overall performance and capabilities of the battery pack. For example, the number of cells in the pack affects its voltage output and capacity, while the chemistry of the cells dictates the pack's discharge rate, cycle life, and safety features. The configuration of the battery pack depends on the specific needs of the application. For instance, series connections increase the voltage of the pack, while parallel connections increase its capacity. A mix of both series and parallel connections may be used to achieve the desired balance between voltage and capacity. The physical dimensions of the battery pack are also important, as they determine whether it is suitable for the intended device and provide constraints on its design. Overall, battery packs offer a convenient and efficient way to power a wide range of devices. By combining multiple battery cells into a single unit, they can provide the necessary voltage, capacity, and power density for a variety of applications, from portable electronics to electric vehicles and renewable energy systems.