OEM/ODM Lithium Battery Solutions for Medical Equipment

Medical equipment requires a stable and dependable power source. For portable and battery-powered medical devices, the battery is not simply an energy-storage component. Its voltage stability, protection system, communication functions, mechanical design, charging performance, and safety characteristics can all affect the operation of the equipment.

For medical device manufacturers, OEM/ODM lithium battery development provides a way to design the battery around the equipment rather than adapting the equipment to an off-the-shelf battery.

Custom lithium battery packs can be developed according to the device’s voltage, capacity, operating time, dimensions, discharge requirements, communication protocol, connector, charging method, and target-market requirements.

OEM medical lithium battery

What Are OEM/ODM Lithium Battery Solutions for Medical Equipment?

OEM and ODM medical battery solutions are customized rechargeable lithium battery packs designed for specific medical devices.

An OEM battery solution is generally developed according to the customer’s existing product design and technical specifications. An ODM solution can involve a broader level of engineering support, including battery architecture, cell selection, BMS development, enclosure design, communication functions, prototyping, testing, and production.

Depending on the application, a customized medical battery pack may include:

  • Cellules au lithium-ion
  • Cellules LiFePO4
  • 18650 cylindrical cells
  • 21700 cylindrical cells
  • Système de gestion de la batterie (BMS)
  • Protection circuit
  • NTC temperature sensors
  • Fuel gauge
  • Smart communication interface
  • Custom connectors
  • Custom wiring
  • Plastic or metal enclosure
  • Charging interface
  • Battery status indicators

The final configuration should be determined by the electrical, mechanical, environmental, and regulatory requirements of the medical device.

Medical Equipment That Can Use Custom Lithium Batteries

Custom lithium battery packs can be designed for a wide range of portable and battery-powered healthcare equipment.

Portable Patient Monitoring Equipment

Patient monitors may require continuous and stable power during transportation, emergency situations, or bedside operation.

Battery design may focus on:

  • Sortie de tension stable
  • Longue durée de fonctionnement
  • Accurate state-of-charge information
  • Fonctionnement à basse température
  • Battery status communication
  • Reliable charging and protection

Portable Oxygen Concentrators

Portable oxygen concentrators typically require batteries capable of supplying stable power to compressors and control electronics.

Battery engineers need to consider:

  • Continuous and peak power demand
  • Operating duration
  • Pack weight
  • Available installation space
  • Gestion thermique
  • Temps de charge
  • Battery protection

Ventilators and Respiratory Equipment

For portable ventilators and other respiratory equipment, battery backup can help maintain operation when external power is unavailable.

The battery system may require:

  • Stable output voltage
  • Accurate remaining-runtime estimation
  • Protection contre les surcharges et les décharges excessives
  • Protection contre les courts-circuits
  • Contrôle de la température
  • Communication with the main control system

Infusion Pumps

Infusion pumps are compact devices with specific space and power requirements.

A custom battery can be designed around:

  • Compact dimensions
  • Low weight
  • Required operating time
  • Connector position
  • Charging interface
  • Battery status monitoring
  • Device communication requirements

Portable Diagnostic Equipment

Portable ultrasound systems, diagnostic instruments, and other healthcare terminals can benefit from customized lithium battery packs that balance energy capacity, size, and weight.

Rehabilitation and Home-Care Equipment

Battery-powered rehabilitation equipment and home-care devices may require customized solutions based on operating frequency, charging cycles, enclosure limitations, and user requirements.

Why Custom Battery Design Matters for Medical Equipment

Medical equipment often has limited internal space and specific electrical requirements. An off-the-shelf battery may not provide the required dimensions, connector position, voltage, capacity, or communication interface.

A custom battery solution allows the battery to be developed around the equipment.

1. Customized Voltage and Capacity

The battery configuration can be designed according to the equipment’s operating voltage and required energy.

For example, the battery may be configured to meet a specific voltage and capacity target rather than using a standard commercial battery.

2. Customized Dimensions

Medical devices can have highly constrained internal layouts.

The battery enclosure can be developed according to:

  • Length
  • Width
  • Height
  • Mounting points
  • Cable routing
  • Connector position
  • Internal clearance

This is particularly important for handheld and portable equipment.

3. Customized BMS

The BMS is one of the key components of a rechargeable medical battery pack.

Depending on the equipment, the BMS may provide:

  • Protection contre les surcharges
  • Protection contre la surcharge
  • Protection contre les surintensités
  • Protection contre les courts-circuits
  • Protection de la température
  • Équilibre cellulaire
  • State-of-charge monitoring
  • Battery fault detection
  • Communication with the host device

Communication interfaces can include UART, RS485, CAN, SMBus, or other protocols depending on the device architecture.

4. Battery Communication

For smart medical equipment, the battery may need to communicate with the device controller.

Battery data can include:

  • Tension
  • Actuel
  • Température
  • State of charge
  • State of health
  • Capacité restante
  • Cycle count
  • Battery fault status

The communication protocol and data structure should be defined during the battery development stage.

Choosing the Right Lithium Battery Chemistry

Different medical applications may require different lithium battery chemistries.

Batterie lithium-ion

Lithium-ion batteries can provide a combination of energy density, compact size, and established cell availability. They can be considered for portable medical equipment where weight, operating time, and available installation space are important design factors.

The battery configuration should be selected according to the equipment’s voltage, current, capacity, operating temperature, cycle-life requirements, and mechanical design.

Batterie LiFePO4

LiFePO4 batteries are known for their thermal stability and cycle-life characteristics. They can be considered for applications where safety, durability, and service life are important design considerations.

However, LiFePO4 batteries generally have a lower nominal cell voltage than conventional lithium-ion cells, so the series configuration and charging system need to be designed accordingly.

Chemistry selection should be based on the complete device requirements rather than assuming one chemistry is suitable for every medical application.

Medical Battery Safety and Certification

Battery compliance should be considered from the beginning of product development.

Depending on the application and target market, commonly relevant standards and requirements may include:

  • IEC 62133-2
  • UL 1642
  • ONU 38.3
  • IEC 60601-1, where applicable to the complete medical electrical equipment
  • CE requirements for applicable European markets
  • RoHS
  • Applicable regional battery regulations

The exact requirements depend on the battery architecture, medical device classification, target market, transportation method, and final product configuration.

Battery certification should therefore be planned together with the medical device development process rather than treated as a final production step.

EU Battery Requirements for Medical Devices

For products placed on the European market, manufacturers should consider the requirements of Regulation (EU) 2023/1542, along with other applicable legislation.

The EU Battery Regulation introduces requirements covering areas such as battery sustainability, labeling, information, conformity assessment, and battery management.

Certain battery removability and replaceability requirements also contain specific considerations for medical devices and safety-critical equipment.

This means medical equipment manufacturers should evaluate battery architecture together with the intended use and regulatory requirements of the complete product.

OEM/ODM Medical Battery Development Process

A structured development process can reduce compatibility problems during mass production.

Step 1: Define Device Requirements

The battery manufacturer evaluates:

  • Rated voltage
  • Operating voltage
  • Capacité
  • Continuous current
  • Peak current
  • Durée de fonctionnement
  • Charging requirements
  • Dimensions
  • Poids
  • Température de fonctionnement
  • Température de stockage
  • Connector requirements
  • Protocole de communication

Step 2: Select Cells

Cells are selected according to the application’s electrical and mechanical requirements.

Important parameters include:

  • Chimie cellulaire
  • Tension nominale
  • Capacité
  • Résistance interne
  • Discharge capability
  • Durée du cycle
  • Température de fonctionnement
  • Cohérence cellulaire
  • Traçabilité

For cylindrical-cell battery packs, cell matching is also important for maintaining pack consistency.

Step 3: Design the Battery Pack

Engineers develop the electrical and mechanical structure of the battery.

This may include:

  • Configuration des cellules
  • BMS
  • Protection circuit
  • Capteurs de température
  • Fuse
  • Connecteur
  • Wiring
  • Housing
  • Mounting structure

The pack structure should also consider heat generation, insulation, vibration, and the installation environment.

Step 4: Develop the BMS

For smart medical equipment, BMS hardware and firmware can be configured according to the host device.

Protection thresholds, SOC calculation, communication protocols, alarms, and fault-management functions should be verified against the equipment requirements.

Step 5: Prototype Development

Prototype batteries allow the medical device manufacturer to verify:

  • Physical compatibility
  • Electrical performance
  • Charging behavior
  • Runtime
  • Communication
  • Thermal performance
  • Installation
  • User operation

The prototype stage can also identify potential problems with connectors, mounting structures, cable routing, and battery enclosure design.

Step 6: Testing and Validation

Testing can include:

  • Essais de capacité
  • Tests de charge et de décharge
  • Test de résistance interne
  • Tests de vieillissement
  • Essais de température
  • Protection contre les surcharges
  • Protection contre la surcharge
  • Protection contre les courts-circuits
  • Protection contre les surintensités
  • Essais mécaniques
  • Tests de communication

Testing requirements should be defined according to the battery and complete medical device design.

Step 7: Certification and Documentation

Depending on the project, documentation may include:

  • Caractéristiques de la batterie
  • Cell documentation
  • BMS specifications
  • Safety test reports
  • Documentation UN38.3
  • Material documentation
  • SDS/MSDS
  • Traceability records
  • Production inspection records
  • Certification-related documents

The battery manufacturer should work with the medical device manufacturer to identify which documents and tests are applicable to the final product.

Step 8: Mass Production

After design verification and required approvals, the battery can move into controlled mass production.

Production quality control may include:

  • Contrôle des cellules à l'arrivée
  • Cell matching
  • Welding inspection
  • BMS testing
  • Essais de capacité
  • Tests de vieillissement
  • Tests fonctionnels
  • Final inspection
  • Production traceability

What Information Should Medical Device Manufacturers Provide?

To develop a suitable OEM/ODM battery solution, manufacturers should ideally provide:

  1. Equipment model
  2. Required battery voltage
  3. Target capacity or operating time
  4. Maximum continuous current
  5. Peak current
  6. Dimensions de la batterie
  7. Connector information
  8. Mode de recharge
  9. Protocole de communication
  10. Température de fonctionnement
  11. Température de stockage
  12. Expected cycle life
  13. Méthode d'installation
  14. Target market
  15. Required certifications

If the battery specification has not yet been finalized, the battery manufacturer can work from the equipment’s power consumption and operating profile.

How to Select a Medical Equipment Battery Manufacturer

When evaluating an OEM/ODM battery supplier, look beyond battery price.

Consider the manufacturer’s ability to support the complete development process.

Engineering Capability

The supplier should be able to support:

  • Sélection des cellules
  • Electrical design
  • Développement du BMS
  • Mechanical design
  • Prototyping
  • Testing
  • Production engineering

A supplier with experience in customized battery development can help identify potential compatibility issues during the design stage.

Quality Management

Medical battery projects require consistent production and traceability.

Manufacturers should evaluate the supplier’s:

  • Quality management system
  • Incoming inspection
  • Production controls
  • Testing procedures
  • Traceability system
  • Final inspection process

The quality system should be appropriate for the project requirements.

Certification Experience

Ask whether the supplier has experience preparing battery documentation and testing for the target market.

Certification planning should begin during the battery design stage because changes to the cell, BMS, enclosure, or electrical configuration can affect testing requirements.

Capacité de personnalisation

The supplier should be able to customize:

  • Tension
  • Capacité
  • Dimensions
  • BMS
  • Connecteur
  • Communication
  • Enclosure
  • Wiring
  • Charging solution
  • Battery labeling

Production and Testing

A suitable manufacturer should have defined inspection and testing procedures from incoming cells through finished battery packs.

This helps maintain consistency between prototype batteries and mass-produced units.

OEM/ODM Medical Battery Solutions from FirstPower

FirstPower provides customized lithium battery pack development based on medical equipment requirements.

OEM/ODM services can cover:

  • Sélection des cellules
  • Conception du bloc-batterie
  • Lithium-ion battery solutions
  • Solutions de batteries LiFePO4
  • Tension et capacité personnalisées
  • Compact battery structures
  • Personnalisation du BMS
  • CAN, RS485, UART and other communication options
  • Personnalisation des connecteurs
  • Développement de prototypes
  • Battery testing
  • Soutien à la certification
  • Mass production

Potential applications include:

  • Patient monitoring equipment
  • Portable oxygen concentrators
  • Respiratory equipment
  • Ventilateurs
  • Pompes à perfusion
  • Portable diagnostic equipment
  • Matériel de réadaptation
  • Home-care equipment
  • Other battery-powered medical devices

The battery specification, chemistry, BMS configuration, and certification plan are developed according to the actual device requirements.

Conclusion

A lithium battery for medical equipment should be designed as part of the complete product system.

The right OEM/ODM development process begins with the equipment’s power requirements and continues through cell selection, battery architecture, BMS development, mechanical integration, prototype testing, certification planning, and controlled production.

For medical device manufacturers, early battery engineering can help reduce redesign risks and improve compatibility between the battery and the final equipment.

If you are developing a battery-powered medical device, providing the equipment’s voltage, capacity, dimensions, current requirements, communication protocol, and target market is a practical starting point for developing a customized lithium battery solution.

Frequently Asked Questions

Q1: Can lithium batteries be customized for medical equipment?

Yes. Battery packs can be customized according to voltage, capacity, dimensions, connector, BMS, communication protocol, charging requirements, and operating conditions.

Q2: Which lithium battery chemistry is suitable for medical equipment?

Lithium-ion and LiFePO4 batteries can both be used in different applications. Chemistry selection should be based on the equipment’s energy, power, size, temperature, cycle-life, and safety requirements.

Q3: Can the BMS communicate with medical equipment?

Yes. Depending on the equipment architecture, smart BMS solutions can support communication interfaces such as UART, RS485, CAN, or other protocols.

Q4: What certifications are required for medical lithium batteries?

Requirements vary by application and market. IEC 62133-2, UL 1642, UN38.3, CE-related requirements, and other applicable standards may need to be considered.

Q5: Can the battery manufacturer help with certification?

A battery supplier can provide technical documentation, test samples, battery specifications, and support applicable battery testing. However, certification requirements for the complete medical device depend on the final product and target market.

Q6: Can medical battery packs be made in custom shapes?

Yes. Cylindrical and prismatic cells can be considered for different mechanical designs, and the finished battery enclosure can be customized to fit the equipment.

Q7: Can medical equipment batteries support CAN or RS485 communication?

Yes. Smart BMS solutions can be configured with communication interfaces such as CAN, RS485, UART, or other protocols according to the equipment’s communication requirements.

Q8: What should I provide when requesting a custom medical battery?

Useful information includes the required voltage, capacity, operating current, peak current, battery dimensions, connector, charging method, operating temperature, communication protocol, expected runtime, target market, and certification requirements.

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