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CUSTOM BATTERY SYSTEMS FOR ROBOTICS

Robotics & Automation Battery Solutions

Custom battery systems for AMRs, AGVs, inspection, cleaning, service and unmanned equipment—engineered around the real duty cycle, motor loads, charging method, communication interface and operating environment.

APPLICATION-LED ENGINEERING

Start With the Robot Duty Cycle—not a Generic Battery Specification

A useful battery definition starts with how the robot actually works: route and shift length, payload, acceleration and lifting peaks, idle demand, docking frequency, available installation space, temperature, ingress exposure and controller interface. Stellova uses these inputs to define the electrical architecture, BMS functions, charging strategy, mechanical integration and validation scope for the target equipment.

ENGINEERING INPUTS

What Must Be Defined Before a Robot Battery Is Specified

The following inputs materially change battery performance and integration. They should be confirmed before prototype specifications are frozen.

01

Mission profile & energy demand

Define route length, shift duration, payload, idle time, auxiliary loads and the required operating reserve.

02

Peak current & transient loads

Capture acceleration, lifting, pumps, actuators and other short-duration loads so the pack and protection limits are not sized from average power alone.

03

Charging & availability

Match plug-in, docking, opportunity or fast charging to the operating schedule, charger interface and acceptable downtime.

04

BMS & equipment integration

Define protection thresholds, SOC/SOH reporting, CAN or RS485 communication, connectors, mounting, sealing and thermal requirements with the robot controller and charger.

ROBOTICS APPLICATIONS

Choose the Application Closest to Your Equipment

Battery priorities differ between mobile logistics robots, outdoor inspection platforms, cleaning equipment, service robots and unmanned systems. Use the application pages below to review the relevant operating conditions, engineering priorities and available verified configurations without treating one platform as a universal solution.

SYSTEM ENGINEERING SCOPE

One Battery Architecture Coordinated With the Robot, Charger and Operating Environment

Stellova develops the battery as part of the equipment system. Electrical performance, protection, communication, charging, mechanical packaging and validation are coordinated against the same approved requirement rather than handled as disconnected specifications.

01

Electrical definition

Establish voltage, usable energy, continuous and peak current, reserve margin and protection limits from the measured or documented load profile.

02

BMS & communication

Coordinate protection, sensing, SOC/SOH reporting, CAN or RS485 messaging and charger control with the host controller.

03

Charging & mechanical integration

Define docking or plug-in charging, connectors, mounting, service access, sealing and thermal provisions around the available installation envelope.

04

Prototype & validation plan

Convert critical requirements into reviewable specifications and verification conditions before production release; final tests are agreed for the actual project rather than claimed generically.

FROM REQUIREMENT TO PROTOTYPE

Define the Inputs That Control Battery Risk Before Sampling

Provide the equipment load profile, operating schedule, charging method, interface requirements, installation constraints and environment. These inputs allow the electrical, BMS and mechanical scope to be reviewed together before a prototype is released.

Review the Engineering Process ↗

DISCUSS YOUR ROBOTICS PROJECT

Share the Robot Duty Cycle and Integration Requirements

Send the target voltage and runtime, continuous and peak loads, charging window, communication protocol, available space, environment, compliance needs and forecast volume. Stellova will review the requirement and identify the next technical and commercial step.

Discuss Your Robotics Battery Project ↗