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25.6V 40Ah Service Robot Battery: Powering Reliable Service Automation

25.6V 40Ah Service Robot Battery: 1200 + cycles, CAN/RS485, IP54. Powers hotel/restaurant bots—ideal for 24/7 hospitality automation.

  • Nominal Voltage:25.6V
  • Rated Capacity:40Ah
  • Actual Voltage:25.6V
  • Cycle Time:≥1200 cycles
  • Max. Continuous Current:40A
  • Peak Current:40A
  • Voltage Range:20V – 29.2V
  • Operating Temperature:-15~60℃
  • Weight:10.8kg
  • Dimension:280*200*160mm
  • Waterproof Grade:IP54
  • Communication:CAN, RS485

25.6V 40Ah Service Robot Battery: Powering Reliable Service Automation

Introduction

In the realm of service robotics, where reliability, efficiency, and seamless integration are paramount, the 25.6V 40Ah Service Robot Battery emerges as a meticulously engineered power solution. Crafted specifically for service robotics applications, this LiFePO₄ – based battery (with a 24V nominal voltage) offers a compelling combination of 40Ah endurance, dual CAN/RS485 communication capabilities, and a stable 25.6V power output. Constructed using lightweight and compact LiFePO₄ cells, fortified with IP54 protection and BMS safeguards, it serves as the dependable energy source for hotel delivery bots, restaurant servers, and round – the – clock hospitality fleets, ensuring uninterrupted service in diverse operational environments.

 

Service Robot Lithium Battery Model Comparison

Model Voltage Capacity Battery Type Key Features Application
25.6V 40Ah Service Robot Battery 24V (Actual: 25.6V) 40Ah LiFePO₄ 1200+ cycles, CAN/RS485, IP54, -15~60℃, fast charge/discharge Hotel/Restaurant Service Robots
24V 60Ah Service Robot Battery 24V (Actual: 25.6V) 60Ah LiFePO₄ 2000+ cycles, CAN, IP54, -15~60℃, 60A continuous discharge Large – scale Hospitality Robots
10.8V 2.6Ah Service Robot Battery 10.8V 2.6Ah Li – ion (18650) Compact, low – power BMS, stable for small bots Indoor Guiding/Cleaning Robots
21.6V 2.9Ah Service Robot Battery 21.6V 2.9Ah Li – ion Lightweight, high energy density, fast charge Medical/Educational Assistant Bots
25.6V 10Ah Service Robot Battery 25.6V 10Ah LiFePO₄ Long cycle life, thermal stability, safe for gait – training robots Gait – Training/Medical Robots

Why It Dominates Service Robotics

1. Lightweight & Compact for Tight Spaces

The 25.6V 40Ah Service Robot Battery ensures:
  • “280×200×160mm Design: Fits hotel delivery bots, restaurant server robots—no payload strain.”
  • “40Ah Capacity: Runs room – service robots for 120+ deliveries per charge—no mid – shift stops.”

2. Dual Communication for Smart Fleets

With CAN/RS485:
  • “Real – Time Health Tracking: Monitors voltage, capacity, and faults—prevents lobby robot downtime.”
  • “Precision Data Sync: Integrates with hotel POS systems—automates charging schedules.”

3. LiFePO₄ Safety & Longevity

LiFePO₄ cells and IP54 features:
  • “1200 + Cycles: Powers hospitality robots for 2 + years of daily use—slashes lifecycle costs.”
  • “IP54 Protection: Survives kitchen spills, hotel corridor dust—no performance loss.”

Application Scenarios

1. Hospitality & Food Service

The 25.6V 40Ah Service Robot Battery powers:
  • “Hotel Delivery Robots: 25.6V 40Ah capacity supports 8 + hours of room – service runs—no power drops.”
  • “Restaurant Serving Bots: CAN/RS485 integration enables remote diagnostics—minimizes kitchen downtime.”

2. Extreme Environment Adaptation

For temperature – variable, messy spaces:
  • “Cold – Climate Hotels: Operates at – 15℃ entrances, powering outdoor greeting robots.”
  • “Busy Restaurant Back – of – House: IP54 protection handles food prep spills, dust buildup.”

FAQ

Q1: What applications are lithium batteries for service robots designed for?

A: Lithium batteries for service robots are commonly used in hotel service robots, restaurant delivery robots, reception and guidance robots, retail service robots, and other mobile service automation platforms. Battery selection should be based on the robot’s voltage, required runtime, continuous and peak load, available installation space, charging method, and communication requirements.

A: Start with the robot’s nominal voltage, required capacity, continuous and peak current, target runtime, battery compartment dimensions, weight limit, charging current, connector type, and communication interface. Output power and capacity should be matched to the robot’s real duty cycle rather than selected from voltage or ampere-hours alone.

A: Yes. FEBATT can develop custom lithium battery packs for service robot projects, including voltage, capacity, dimensions, housing, connector type, BMS settings, charging parameters, and communication interfaces. This is useful when a robot has a proprietary battery compartment, non-standard power requirements, or specific integration requirements.

A: Cycle life varies with cell chemistry, depth of discharge, charge and discharge rate, operating temperature, and duty cycle. As a published reference, one FEBATT 25.6V 60Ah service robot battery is rated for 2,000+ cycles. The cycle-life rating for each service robot battery should be confirmed from the specifications of the selected model and its test conditions.

A: The Battery Management System (BMS) monitors key battery conditions such as voltage, current, and temperature and can provide protection against overcharge, over-discharge, overcurrent, short circuit, and abnormal temperature conditions. Depending on the configuration, the BMS may also provide state-of-charge information, fault data, cell balancing, and communication with the robot controller.

A: Yes, when the battery is engineered for the robot’s load profile. Service robots can experience short power peaks during startup, acceleration, lifting, turning, or operation of actuators and accessories. The battery cells, BMS, wiring, and connectors must therefore be selected to support both the required continuous current and short-duration peak current without excessive voltage drop or unintended protection shutdown.

A: Service robot lithium batteries can be configured with communication interfaces such as CAN or RS485, depending on the project. These interfaces allow the robot controller to access battery information such as state of charge, voltage, current, temperature, and fault status. FEBATT’s published service robot battery configurations include CAN and RS485 examples, but the required protocol and message format should be confirmed during integration.

A: Temperature affects available capacity, charging behavior, internal resistance, and battery aging. FEBATT’s published service robot references include selected configurations with operating ranges down to -20°C and up to 60°C, while another 25.6V 60Ah service robot battery is specified at -15°C to 60°C. Actual charge and discharge temperature limits are model-specific and should be confirmed for the robot’s operating environment.

A: Charging strategy should be matched to the battery design and the robot’s operating schedule. Charge current, charger voltage, allowable charging window, duty cycle, and whether the robot charges between tasks all affect practical uptime. For reference, FEBATT’s published 48V 45Ah service robot battery configuration specifies a 21A (0.5C) charge current. This is an example rather than a universal charging rate for all service robot batteries.

A: LiFePO4 and other rechargeable lithium-ion chemistries can both be used in service robots. LiFePO4 is often selected when long cycle life and thermal stability are priorities, while other lithium-ion chemistries can be useful when energy density, compact size, or lower weight is more important. The best chemistry depends on the robot’s runtime target, space and weight limits, load profile, charging strategy, and operating environment.

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