Batteries Rechargeable (Secondary)

Image Part Number Description / PDF Quantity Rfq
LC-P1228AP

LC-P1228AP

Panasonic

BATTERY LEAD ACID 12V 28AH

0

KR1800SCE

KR1800SCE

Panasonic

BATTERY NICAD 1.2V 1.8AH SC

620

HHR-150AAC8T

HHR-150AAC8T

Panasonic

BATTERY NIMH 1.2V 1.5AH AA

52

N-1300SCR

N-1300SCR

Panasonic

BATTERY NICAD 1.2V 1.3AH SC

691

HHR-60AAAHT

HHR-60AAAHT

Panasonic

BATTERY NIMH 1.2V 500MAH AAA

132

LC-P127R2P

LC-P127R2P

Panasonic

BATTERY LEAD ACID 12V 7.2AH

67

LC-RA1212P1

LC-RA1212P1

Panasonic

BATTERY LEAD ACID 12V 12AH

0

LC-R0612P1

LC-R0612P1

Panasonic

BATTERY LEAD ACID 6V 12AH

0

N-1700SCR

N-1700SCR

Panasonic

BATTERY NICAD 1.2V 1.7AH SC

2027

LC-R127R2P1

LC-R127R2P1

Panasonic

BATTERY LEAD ACID 12V 7.2AH

2076

HHR-70AAAE4

HHR-70AAAE4

Panasonic

BATTERY NIMH 1.2V 700MAH AAA

17261

HHR-370AHA05

HHR-370AHA05

Panasonic

BATTERY NIMH 1.2V 3.5AH L-FAT A

360

HHR-30SCPY20

HHR-30SCPY20

Panasonic

BATTERY NIMH 1.2V 3AH SC

246

VL-1220/FCN

VL-1220/FCN

Panasonic

BATTERY LITH 3V 7MAH COIN 12.5MM

1248

ML-2020/H1CN

ML-2020/H1CN

Panasonic

BATT LITH 3V 45MAH COIN 20.0MM

16065

ML-2020/G1AN

ML-2020/G1AN

Panasonic

BATT LITH 3V 45MAH COIN 20.0MM

16397

N-700AAC

N-700AAC

Panasonic

BATTERY NICAD 1.2V 700MAH AA

8791

KR-CHT(2.5)

KR-CHT(2.5)

Panasonic

BATTERY NICAD 1.2V 2.5AH C

0

KR1800SCET

KR1800SCET

Panasonic

BATTERY NICAD 1.2V 1.8AH SC

96

HHR-380AB27T

HHR-380AB27T

Panasonic

BATTERY NIMH 1.2V 3.7AH L-A

75

Batteries Rechargeable (Secondary)

1. Overview

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.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication 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 resistanceHybrid vehicles, digital cameras
Lead-AcidLow cost, high surge current capability, heavy weightAutomotive starters, backup power systems
Lithium Iron Phosphate (LiFePO4)Exceptional thermal stability, long lifespan (2000+ cycles), lower energy densityElectric buses, solar storage, marine applications

3. Structure and Composition

Typical rechargeable battery cells consist of:

  • Cathode: Lithium cobalt oxide (LiCoO2) in Li-ion, Nickel oxyhydroxide (NiOOH) in NiMH
  • Anode: Graphite (Li-ion), Hydrogen-absorbing alloy (NiMH)
  • Electrolyte: Lithium salt in organic solvent (Li-ion), Potassium hydroxide (NiMH)
  • Separator: Microporous polymer membrane preventing short circuits
  • Current Collectors: Copper (anode), Aluminum (cathode)

Cell designs include cylindrical (18650 format), prismatic, and pouch configurations with integrated protection circuits.

4. Key Technical Parameters

ParameterDescriptionImportance
Energy DensityWh/kg or Wh/LDetermines runtime and weight
Charge Cycle LifeNumber of full discharge/charge cyclesDictates longevity and cost-effectiveness
Internal ResistanceMeasured in milliohmsAffects power output and efficiency
Self-Discharge RateMonthly capacity loss percentageStorage performance indicator
Charging EfficiencyPercentage of energy retained during chargingImpacts operational costs

5. Application Fields

  • Consumer Electronics: Smartphones, tablets, wearables
  • Transportation: EVs (Tesla Model 3), Hybrid vehicles (Toyota Prius)
  • Renewable Energy: Solar+storage systems (Tesla Powerwall)
  • Industrial: Forklifts, uninterruptible power supplies (UPS)
  • Military/Aerospace: UAVs, satellites

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductChemistry Type
PanasonicNCR18650BLithium-ion
BYDBlade BatteryLithium Iron Phosphate
Samsung SDIINR18650-30QNickel Cobalt Manganese (NCM)
Exide TechnologiesChloride SLALead-Acid
LG ChemLGDBHE21865Lithium-ion Polymer

7. Selection Recommendations

Key considerations:

  • Energy Requirements: Calculate Wh needed for target runtime
  • Power Profile: Assess peak current demands (e.g., EV acceleration)
  • Environmental Conditions: Operating temperature range (-20 C to 60 C typical)
  • Cost Constraints: Balance upfront cost vs lifecycle value
  • Regulatory Compliance: UN38.3, IEC 62133 certifications

Example: Select LiFePO4 for solar storage systems requiring 5000+ cycles and wide temperature tolerance.

8. Industry Trends

  • Material Innovation: Silicon anodes (20%+ capacity increase), solid-state electrolytes
  • Fast Charging: 0-80% in 15 minutes (e.g., Tesla 4680 cells)
  • Recycling: EU Battery Passport regulations driving closed-loop systems
  • Market Growth: 12.6% CAGR projected through 2030 (Grand View Research)
  • AI Integration: Smart BMS (Battery Management Systems) optimizing charge cycles
RFQ BOM Call Skype Email
Top