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February 19, 2026Batteries3 citationsOpen Access

Architectural Evolution and Advanced Joining Techniques in High-Energy-Density Cylindrical Li-Ion Cells

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MAM. Chelladurai AsirvathamPNPuritut NakhanivejVPVincent A. Perry-French

Key Points

  • The research aims to analyze the shift from traditional tabbed lithium-ion cells to the advanced 4680 tabless design and its impact on performance.
  • Comparative analysis of cylindrical lithium-ion cell architectures
  • Forensic investigation of welding techniques
  • Assessment of thermal management and internal resistance
  • Evaluation of microstructural properties in weld joints.
  • The 4680 cell design reduces internal resistance and enhances thermal management.
  • Advanced welding techniques resulted in more reliable Al-Steel welds.
  • Use of a thicker casing improved the mechanical strength of the cell.
  • The shift to tabless design supports higher power applications effectively.

Abstract

This study presents a comparative analysis of cylindrical lithium-ion cell architectures, tracing the evolution from the conventional tabbed design (18650/21700) to the large-format 4680 cell with its tabless current collectors. This architectural shift is driven by the imperative to minimise internal ohmic resistance and enhance thermal management in high-power automotive battery applications. Forensic investigation reveals that the 4680 design replaces localised, high-resistance tab connections with a distributed, low-impedance interface, necessitating the adoption of advanced manufacturing techniques, including long ultrasonic torsional welding and highly controlled high-power density laser welding. Crucially, the welding of external aluminium busbars to the cell relies on sophisticated microstructural engineering, particularly for the challenging dissimilar Aluminium-Steel (Al-Steel) anode weld. This weld format employs a spiral laser path to limit the formation of brittle aluminium-iron (Al-Fe) intermetallic compounds (IMCs), leveraging the steel cell casing’s nickel plating to promote a more ductile Al-Fe-Ni phase for improved joint reliability. Furthermore, the 4680 cell incorporates a significantly thicker casing (≈0.54 to 0.7 mm) for enhanced mechanical strength. In conclusion, the 4680 cell achieves superior performance through robust mechanical design and advanced welding processes that prioritise microstructurally sound, low-resistance interfaces.

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Cite This Study

Asirvatham et al. (2026) studied this question.

synapsesocial.com/papers/6996a8a9ecb39a600b3efa2fhttps://doi.org/10.3390/batteries12020072
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