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26650 48V 40Ah LiFePO4 Battery for Hotel Robotics with RS485

Battery for Hotel Robotics with RS485 delivers 48V power, RS485 communication, and LiFePO4 safety—ideal for hotel service robots, medical bots, and home automation machines.

  • Nominal voltage:48V
  • Nominal capacity:40Ah
  • Charging voltage: 54V
  • Charging current: ≤10A
  • Discharging current: 50A
  • Instant discharging current: 100A
  • End-off voltage: 37.75V
  • Internal resistance: ≤200mΩ
  • Battery weight: 35Kg
  • Product dimension: 420×265×140mm(Max)
  • Discharging temperature: -20~55 ℃

26650 48V 40Ah LiFePO4 Battery for Hotel Robotics with RS485

Product Introduction

Engineered as a Battery for Hotel Robotics with RS485, this 26650 lithium iron phosphate LiFePO4 solution is purpose-built for hotel service robots, medical automation, and home service machines. Featuring 48V nominal voltage, 40Ah capacity, and integrated RS485 communication, this RS485-Enabled Battery for Hotel Robotics leverages LiFePO4’s inherent safety and 26650 cell durability. Unlike standard batteries, it supports -20~60℃ wide-temperature operation, ≥2000 cycle life, and seamless data sync via RS485—making it the reliable power source for hotel guest service, medical assistance, and home automation robots.

Technical Specifications

Table: Battery for Hotel Robotics with RS485 Core Parameters

Parameter Details
Cell Type 26650 Lithium Iron Phosphate LiFePO4
Nominal Voltage 48V
Rated Capacity 40Ah
Charge Voltage 54V
Charge Current ≤10A
Discharge Current 50A
Discharge Cut-off Voltage 37.75V
Weight 35Kg
Dimensions 420×265×140mm
Operating Temperature -20~60℃
Communication RS485 For Robot Fleet Management
Application Hotel Service Robots, Medical Service Robots, Home Automation Machines

Core Advantages of Battery for Hotel Robotics with RS485

1. RS485 Communication for Smart Hotel Robot Fleets

“The Battery for Hotel Robotics with RS485 enables real-time data transmission:
  • Syncs battery health, SOC, and temperature with hotel robot management systems, enabling predictive maintenance and optimized guest service scheduling.
  • Supports custom protocol integration, ensuring seamless compatibility with diverse hotel robotic platforms.”

2. LiFePO4 Safety & High Energy Density

“Leveraging lithium iron phosphate technology:
  • Inherently Safe: Eliminates thermal runaway risks, critical for robots operating in guest rooms or medical facilities.
  • High Energy Density: Stores ample power 48V 40Ah in a compact 239mm×114mm×76mm form factor, ideal for space-constrained hotel service bots.”

3. Wide Temperature Operation for Diverse Environments

“Engineered for versatility:
  • -20~60℃ Range: Powers robots in hotel freezers for example minibar restocking and warm hospitality zones, as well as medical facilities with temperature-controlled rooms.”

4. Long Cycle Life for Reduced Operational Costs

“LiFePO4 ensures:
  • ≥2000 Cycles: Endures thousands of charge-discharge cycles, lowering replacement frequency for hotel and medical robot fleets—reducing total cost of ownership.”

5. Multi-Scenario Adaptability

“Designed for diverse service robotics:
  • Hotel Service: Powers room delivery robots, concierge bots, and housekeeping assistants.
  • Medical Service: Supports patient-assist robots, medication delivery machines, and diagnostic equipment.
  • Home Automation: Enables domestic service robots for elderly care or household tasks.”

Application Scenarios

1. Hotel Guest Service Robots

Room Amenity Delivery & Concierge Tasks: Powers robots that deliver towels, meals, or act as digital concierges. The Battery for Hotel Robotics with RS485’s RS485 communication enables remote monitoring, ensuring uninterrupted guest service.”

2. Medical Service Robots

Patient Assistance & Medication Delivery: Supplies energy for robots that assist patients, deliver medications, or perform routine checks. Its wide temperature tolerance and safety make it ideal for hospital environments.”

3. Home Automation Robots

Domestic Task Support: Powers robots that clean, cook, or assist with daily chores. The battery’s compact size and long cycle life fit seamlessly into home robotic designs.”

FAQ

Q1: What applications are medical robot batteries designed for?

A: Medical robot batteries are used in applications such as rehabilitation robots, surgical robotic equipment, hospital logistics robots, and other mobile or electrically powered healthcare robotic systems. The battery must be matched to the robot’s voltage, runtime, load profile, available installation space, charging method, and control interface rather than selected by capacity alone.

A: Start with the robot’s required voltage, usable capacity, continuous and peak current, target runtime, available battery space, weight limit, charging requirements, and communication interface. For medical rehabilitation and surgical robotic equipment, stable power delivery and predictable integration are especially important, so the battery should be engineered around the complete operating profile of the equipment.

A: Yes. FEBATT can develop custom medical robot battery packs according to project requirements, including voltage, capacity, cell configuration, dimensions, housing, connector type, BMS settings, charging parameters, and communication interfaces. Customization is particularly useful when rehabilitation or surgical robots have restricted installation space or non-standard electrical requirements.

A: Rechargeable lithium-ion chemistries, including LiFePO4 and other lithium-ion configurations, can be used in medical robot applications. The appropriate chemistry depends on required energy density, cycle life, discharge performance, size, weight, and operating conditions. Chemistry should therefore be selected according to the specific medical robot design rather than treated as a one-size-fits-all choice.

A: A 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 battery configuration, the BMS may also support state-of-charge estimation, fault information, cell balancing, and communication with the robot controller.

A: Service life depends on battery chemistry, depth of discharge, charge and discharge rate, operating temperature, charging strategy, and the robot’s duty cycle. As a reference, selected FEBATT robot battery configurations are rated for 2,000+ cycles at 80% depth of discharge (DoD). The actual cycle-life rating for a medical robot battery should always be confirmed for the selected model and operating conditions.

A: Medical robots can have different power demands during movement, lifting, actuator operation, computing, or other peak-load events. The battery must provide sufficient continuous current for normal operation and adequate peak current for short-duration load increases without excessive voltage drop or protection shutdown. These current requirements should be defined during battery selection and matched to the BMS and cell configuration.

A: Depending on the project, medical robot battery systems can be configured with communication interfaces such as CAN or RS485 for data exchange with the robot controller. These interfaces can support information such as state of charge, voltage, current, temperature, and fault status. The required protocol, message format, and communication logic should be confirmed during system integration.

A: Size and weight can directly affect robot mobility, balance, enclosure design, and serviceability. FEBATT’s published medical robot battery examples include compact configurations such as 25.2V 2.9Ah as well as higher-capacity configurations such as 22.4V 50Ah, showing that battery architecture can vary substantially by application. A custom pack should be designed around the actual installation envelope and weight target of the robot.

A: Charging current, charger voltage, target runtime, duty cycle, allowable charging window, and whether the robot charges between operating periods should all be defined before the battery is finalized. For example, one published 48V 10Ah rehabilitation robot battery specifies a charge current of up to 5A and a 10A discharge current, illustrating why charging and load requirements must be matched to the individual battery model rather than assumed across the full product range.

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