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18650 48V 20Ah Energy Storage Battery for Industrial Robot with CAN

48V 20Ah Energy Storage Battery for Industrial Robot: CAN – enabled, 18650 cells, 20Ah. Powers factory automation, material – handling bots—reliable industrial power.

Nominal Voltage:48V
Rated Capacity:20Ah
Dimension:214*180*149mm
Charge Voltage:54.6V
Charge Current:≤10A
Discharge Current:20A
Discharge Cut-off Voltage:32.5V
Weight:4Kg
Operating Temperature:-20~55℃
Application:industrial robot

18650 48V 20Ah Energy Storage Battery for Industrial Robot | CAN – Enabled Power for Automation

Introduction

Engineered for industrial automation, the 18650 48V 20Ah Energy Storage Battery for Industrial Robot redefines power for robotic systems. With 18650 cells, 48V output, and 20Ah capacity, this Energy Storage Battery for Industrial Robot integrates CAN communication, multi – layer safety, and rugged durability—ideal for material – handling robots, factory automation, and heavy – duty industrial bots.

Nominal Voltage:48V
Rated Capacity:20Ah
Dimension:214*180*149mm
Charge Voltage:54.6V
Charge Current:≤10A
Discharge Current:20A
Discharge Cut-off Voltage:32.5V
Weight:4Kg
Operating Temperature:-20~55℃
Application:industrial robot

 

 

Core Specifications (Keyword – Dense Table)

Parameter Value Industrial Robot Impact
Nominal Voltage 48V Matches Energy Storage Battery for Industrial Robot power needs
Rated Capacity 20Ah Powers prolonged industrial operations
Battery Type 18650 Energy Storage High – energy density for robotic systems
Communication CAN Enables real – time fleet monitoring
Operating Temperature – 20~55℃ Withstands factory, outdoor environments
Application Industrial robot Specialized for Industrial Robot Battery use

Why This Energy Storage Battery Dominates Industrial Robotics

1. High – Power for Heavy – Duty Bots

The 48V 20Ah Energy Storage Battery for Industrial Robot ensures:
  • “20Ah Long Runtime: Powers material – handling robots through 12 + hours of continuous factory operations.”
  • “48V Stable Output: Drives precise motor functions in welding robots, CNC tenders, and assembly bots.”

2. CAN – Enabled Smart Monitoring

Integrated CAN communication provides:
  • “Real – Time Fleet Tracking: Monitors battery health, voltage, and capacity—prevents robotic downtime in 24/7 factories.”
  • “Custom Alerts: Overcurrent, overheating warnings—critical for automated industrial fleets.”

3. Rugged Design for Industrial Environments

With 18650 cells and – 20~55℃ operation:
  • “Shock – Resistant Casing: Survives drops, vibrations in factory settings—protects battery and robotic systems.”
  • “Wide Temp Adaptation: Works in cold warehouses (- 20℃), hot foundries (55℃), and outdoor logistics.”

Application Scenarios

1. Factory Automation Robots

The Energy Storage Battery for Industrial Robot powers:
  • “Welding Robots: 48V output supports high – precision arc welding, ensuring consistent weld quality.”
  • “Assembly Line Bots: 20Ah capacity enables 8 + hours of component picking, placing, and sorting.”

2. Heavy – Duty Material Handling

For logistics and warehousing:
  • “Pallet – Moving Robots: Stable 48V power ensures safe, efficient transport of 1000 + kg loads.”
  • “Outdoor Logistics Bots: Operates at – 20℃ in cold storage, 55℃ in open – air yards—no climate – related failures.”

 

 

FAQ

Q1: What applications are industrial robot and machinery batteries designed for?

A: Industrial robot and machinery batteries are used in automated equipment and electrically powered industrial systems that require stable DC power, repeated charge-discharge operation, and reliable performance under demanding duty cycles. Typical applications can include industrial robots, mobile automation equipment, material-handling systems, inspection equipment, and other specialized machinery. The battery should always be selected around the equipment’s actual voltage, load profile, installation space, charging method, and operating environment.

A: Start with the machine’s nominal voltage, required operating time, continuous current, peak current, available installation space, and charging strategy. For intelligent equipment, also confirm the connector and communication requirements. A suitable industrial battery should match both the electrical load and the mechanical integration requirements rather than being selected by capacity alone.

A: Cycle life depends on cell chemistry, depth of discharge (DoD), charge and discharge rate, temperature, and the machine’s duty cycle. As a published reference, selected FEBATT robot battery configurations are specified for 2,000+ cycles at 80% DoD. Actual cycle-life ratings vary by battery model and test conditions, so the specification of the selected pack should be used for project evaluation.

A: The Battery Management System (BMS) monitors key operating parameters such as voltage, current, and temperature and helps protect the battery against abnormal operating conditions. Depending on the battery configuration, protection functions can include overcharge, over-discharge, overcurrent, short-circuit, and abnormal-temperature protection. Additional functions such as cell balancing, SOC estimation, fault logging, and communication may be integrated according to the project.

A: Yes, when the battery system is engineered for the machine’s actual load profile. Industrial equipment may experience short power peaks during startup, acceleration, lifting, actuation, or other high-load events. The required continuous current and peak current should therefore be defined during battery selection so the cells, BMS, busbars, connectors, and protection settings can be matched to the application.

A: Voltage must match the machine’s electrical architecture, while capacity primarily determines available energy and operating time. A higher Ah rating does not automatically make a battery suitable if its voltage, discharge capability, dimensions, or communication interface do not match the equipment. FEBATT industrial battery solutions cover multiple voltage and capacity classes, so system selection should be based on the complete operating requirement rather than voltage or capacity alone.

A: Industrial batteries can be configured for different operating environments, but temperature limits are model-specific. Selected FEBATT robot battery configurations publish operating-temperature references down to -20°C and up to 60°C. Actual charge and discharge temperature limits can differ by pack, and applications outside standard conditions may require a dedicated cell selection or thermal-control solution.

A: Communication requirements depend on the machine controller and project architecture. Selected FEBATT robot battery solutions support interfaces such as CAN and RS485, enabling the battery system to exchange information such as SOC, voltage, current, temperature, status, and fault data with the host controller. Interface type, message definitions, and communication logic should be confirmed during system integration.

A: Charging strategy affects both machine availability and long-term battery performance. The charger voltage, charge current, BMS limits, operating schedule, and available charging windows should be matched to the battery configuration. For multi-shift or high-utilization equipment, charging can be planned around actual operating cycles to reduce unnecessary downtime without exceeding the battery’s specified charging limits.

A: Yes. FEBATT can develop battery solutions around project-specific electrical and mechanical requirements. Customization may include voltage, capacity, dimensions, enclosure, continuous and peak current capability, connector and wiring configuration, BMS functions, CAN or RS485 communication, charging requirements, and installation constraints. Final specifications are determined according to the target machine and operating conditions.

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