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26650 22.4V 17Ah LFP Battery for Robots with RS485 Communication

Battery for Robots with RS485 Communication delivers 22.4V 17Ah power, LFP durability, and RS485 fleet monitoring—ideal for service robots, industrial inspection bots, and automation machines.

  • Nominal Voltage:22.4V
  • Rated Capacity:17Ah
  • Dimension:235*165*78mm
  • Charge Voltage:25.55V
  • Charge Current:≤10A
  • Discharge Current:≤15A
  • Discharge Cut-off Voltage:14V
  • Weight:4.2kg
  • Operating Temperature:-10~60℃
  • Application:Robotics

26650 22.4V 17Ah LFP Battery for Robots with RS485 Communication: Smart Power for Automated Machines

Product Introduction

Engineered as a Battery for Robots with RS485 Communication, this 26650 lithium iron phosphate solution is purpose-built for automated robotic systems. Featuring 22.4V nominal voltage, 17Ah capacity, and integrated RS485 communication, this RS485-Enabled LFP Battery for Robots combines high energy density with smart fleet management capabilities. Unlike standard batteries, it leverages LFP’s inherent safety, supports -10~60℃ wide-temperature operation, and enables real-time data sync via RS485—making it the reliable power source for service robots, industrial inspection bots, and automation machines.

Technical Specifications

Table: Battery for Robots with RS485 Communication Core Parameters

Parameter Details
Cell Type 26650 Lithium Iron Phosphate
Nominal Voltage 22.4V
Rated Capacity 17Ah
Charge Voltage 25.55V
Charge Current ≤10A
Discharge Current ≤15A
Discharge Cut-off Voltage 14V
Weight 4.2Kg
Dimensions 235mm×165mm×78mm
Operating Temperature -10~60℃
Communication RS485 (For Robot Fleet Management)
Application Service Robots, Industrial Inspection Robots, Automation Machines

Core Advantages of Battery for Robots with RS485 Communication

1. RS485-Driven Smart Fleet Management

“The Battery for Robots with RS485 Communication enables real-time data transmission:
  • Syncs battery health, SOC, temperature, and discharge current with robot management systems, enabling predictive maintenance and optimized task scheduling.
  • Supports custom RS485 protocols, ensuring seamless compatibility with diverse robotic platforms—from service bots to industrial inspection machines.”

2. 26650 LFP Cell Durability & Safety

“Leveraging 26650 lithium iron phosphate cells:
  • Inherently Safe: Eliminates thermal runaway risks, critical for robots operating in public spaces or industrial environments.
  • Long Cycle Life: Endures thousands of charge-discharge cycles, reducing replacement costs for robotic fleets.”

3. Wide Temperature Operation for Diverse Climates

“Engineered for versatility:
  • -10~60℃ Range: Powers robots in cold storage warehouses (-10℃) and high-heat manufacturing zones (60℃), ensuring uninterrupted automation in temperature-variable settings.”

4. Compact Form Factor for Robotic Integration

“At 235mm×165mm×78mm and 4.2Kg, this battery fits seamlessly into robotic chassis:
  • Ideal for space-constrained service robots, lightweight inspection bots, and compact automation machines—eliminating integration bottlenecks.”

Application Scenarios

1. Service Robots in Hospitality & Retail

Guest Assistance & Inventory Management: Powers hotel delivery robots, retail inventory bots, and concierge machines. The Battery for Robots with RS485 Communication’s RS485 enables remote monitoring, ensuring uninterrupted guest service and inventory accuracy.”

2. Industrial Inspection Robots

Factory & Infrastructure Audits: Supplies energy for robots inspecting manufacturing lines, pipelines, or civil structures. Its 15A discharge current drives LiDAR, cameras, and communication modules simultaneously, while RS485 syncs inspection data in real time.”

3. Automation Machines in Logistics & Healthcare

Parcel Sorting & Patient Support: Powers logistics robots sorting packages and healthcare bots assisting patients. The battery’s compact size and wide temperature tolerance work in warehouse sorting centers and hospital wards alike.”

FAQ

Q1: What applications are special robot lithium batteries designed for?

A: Special robot lithium batteries are designed for robotic systems that operate outside standard indoor service conditions, including patrol robots, firefighting robots, underwater robots or underwater equipment, inspection robots, and other specialized mobile platforms. Battery selection should be based on the robot’s voltage, runtime, load profile, available installation space, communication needs, charging method, and operating environment.

A: Start with the required voltage, usable capacity, continuous and peak current, target runtime, installation dimensions, weight limit, charging requirements, communication interface, and environmental conditions. Special applications may also require additional consideration for moisture, dust, vibration, shock, temperature, sealing, or other project-specific factors. The battery should therefore be engineered around the complete mission profile rather than selected by capacity alone.

A: LiFePO4 and other lithium-ion chemistries can both be used in special robot applications. LiFePO4 is often selected when thermal stability and cycle life are priorities, while other lithium-ion chemistries may be considered when energy density, weight, or compact size are more important. The appropriate chemistry depends on the robot’s duty cycle, space, load, environment, and performance requirements.

A: Yes. FEBATT can develop custom lithium battery packs for special robot projects, including patrol, firefighting, underwater, inspection, and other specialized robots. Customization may include voltage, capacity, dimensions, housing, connector type, BMS settings, charge and discharge current, communication interface, and environmental protection requirements. Final specifications should be defined according to the robot platform and operating conditions.

A: Yes. FEBATT can develop custom lithium battery packs for special robot projects, including patrol, firefighting, underwater, inspection, and other specialized robots. Customization may include voltage, capacity, dimensions, housing, connector type, BMS settings, charge and discharge current, communication interface, and environmental protection requirements. Final specifications should be defined according to the robot platform and operating conditions.

A: Depending on the project, interfaces such as RS485 or CAN can be integrated for communication between the battery BMS and the robot controller. These interfaces can transmit information such as state of charge, voltage, current, temperature, and fault status. Published FEBATT special-robot examples include patrol and firefighting robot battery configurations using RS485 or CAN, but the required protocol and message format should be confirmed for each project.

A: Environmental requirements should be defined during battery development. Factors may include moisture exposure, dust, vibration, shock, immersion, operating temperature, and mechanical impact. Battery chemistry, enclosure design, sealing, connector selection, thermal design, and BMS protection can then be configured for the application. Environmental protection levels and temperature limits should always be confirmed for the specific battery model or project rather than assumed across the full product range.

A: Cycle life depends on battery chemistry, depth of discharge, charge and discharge rate, operating temperature, charging strategy, and the robot’s duty cycle. For example, one published FEBATT 22.4V 28Ah patrol robot battery is specified for 1,000+ cycles while retaining at least 80% capacity. This is a model-specific reference, not a universal rating for all special robot batteries.

A: Special robots may experience short-duration power peaks during movement, climbing, acceleration, pump operation, actuators, or other mission-specific loads. The battery must provide sufficient continuous current for normal operation and adequate peak current for transient loads without excessive voltage drop or unwanted protection shutdown. These requirements should be matched to the cell configuration, BMS, connectors, wiring, and thermal design.

A: Charging voltage, maximum charge current, available charging window, charger communication, and mission schedule should be defined before the battery is finalized. Published FEBATT configurations show why this is model-specific: a 22.4V 28Ah patrol robot battery lists a maximum charge current of 14A, while a 48V 100Ah firefighting robot battery lists up to 47A. These figures are product examples only; the correct charging strategy must be matched to the selected battery and robot system.

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