Battery Pack Construction Techniques

Types of Battery Pack Manufacturing

Understanding these four distinct manufacturing approaches

  1. Module to Pack,
  2. Cell to Pack,
  3. Cell to Chassis, and
  4. Module to Chassis
    is crucial for anyone entering the rapidly evolving EV industry

The building blocks of battery integration

1. Module to pack

How module to pack manufacturing works

Importance of Cell Sorting and Balance

  • It is important in any battery pack that all cells have very similar capacity and internal resistance
  • If the values have a big difference between themselves, certain cells will charge fast, this will cause the BMS to stop charging process to prevent these cells from overcharging
  • But the other cells have not been fully charged and hence actual charge in the battery is less than the capacity at full charge
  • This results in the battery charging to stop at a charge level that is lower than expected
  • Just as certain cells charging faster, imbalance in the cell capacity and internal resistance will cause certain cells to discharge fast
  • As these cells reach their cut off voltage, the BMS will cut off output from the entire pack to prevent deep discharging of the cells at cut off voltage
  • But, a lot of cells might still be well above their cut off voltage, there is still a lot of usable charge left in the battery, but it will be unable to discharge it.

Module Assembly

Pack assembly

Real-world implementations and examples

Ford's F-150 Lightning

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General Motors' Ultium platform

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Global Market

Advantages and trade-offs

2. Cell to pack

The technical innovation in CTP

Cell to Pack Manufacturing Process

Real-world implementations and examples

BYD's Blade Battery

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CATL CTP 3.0

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Tesla

Performance improvements and challenges

3. Cell to chassis

First Mass Production Chassis to Cell Battery Pack

Manufacturing process and technical requirements

Real-world implementations and examples

Leapmotor

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BYD's Cell to Body (CTB)

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Xpeng's "Fuyao" architecture

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Structural and performance benefits

Challenges and limitations

4. Module to chassis

Technical implementation approach

Typical Manufacturing Process

Limited commercial implementation

Advantages and trade-offs

Comparative analysis: Understanding the trade-offs between each Pack Construction Techniques

Energy density progression

3. Traditional Module to Pack

2. Cell to Pack

1. Cell to Chassis

Manufacturing cost implications

Safety and thermal management evolution

Maintenance and lifecycle considerations

Industry trends and manufacturer strategies

Global market evolution

Technology maturity timeline

Regional manufacturing strategies

Manufacturing complexity and production implications

Production scalability challenges

Equipment and capital requirements

Workforce and skill implications

Technological convergence

Industry transformation implications

Global manufacturing distribution and regional strategies

Technology adoption by region shows distinct patterns

Indian manufacturing evolution demonstrates rapid advancement

Supply chain implications and partnerships

Global supply chain evolution reflects technology shifts

Regional supply chain development shows distinct patterns

Future outlook and technology convergence

Technology roadmap suggests continued evolution

Conclusion: Strategic implications for global manufacturing