Published February 6, 2026 | Version v1

Effects of Mechanical Deformation Depth and Size on the Electrochemical Impedance Response of Large-Format Lithium-Ion Batteries

  • 1. Vehicle Safety Institute, Graz University of Technology, Inffeldgasse 13/6, 8010 Graz, Austria
  • 2. Battery4Life GmbH, Inffeldgasse 23/1, 8010 Graz, Austria

Description

This study uses electrochemical impedance spectroscopy (EIS) to investigate coupled effects of mechanical deformation depth and size on impedance responses of large-format prismatic lithium-ion batteries (LIBs). Stepwise out-of-plane deformations were applied using hemispherical impactors of two different diameters (30 mm and 180 mm), representing localized and global mechanical loading while maintaining consistent contact conditions. Cells were deformed to 25%, 50%, 75%, and 95% of the internal short-circuit deformation depth, with EIS measurements conducted at each level. Relative changes of measured impedance parameters and fitted equivalent circuit model (ECM) parameters were analyzed. Results show that localized deformation decreases charge transfer resistance ΔR1 up to 8.0% and total impedance ΔZ up to 1.6%, indicating enhanced charge mobility due to internal structural damage. In contrast, global compression increases ohmic resistance ΔR0 up to 2.1% and ΔZ up to 2.0%, likely due to reduced separator porosity. Phase angle ΔPhase showed opposite trends under localized and global loading, reflecting different capacitive responses. These results reveal that deformation depth and size significantly influence EIS measurements, with non-linear interactions and transition points indicative of irreversible damage. These results support the use of EIS as a non-destructive diagnostic tool for identifying mechanical damage in LIBs.

Files

batteries-12-00054.pdf

Files (4.9 MB)

Name Size Download all
md5:86e927ec6050dcfe8e1daff442a2914e
4.9 MB Preview Download

Additional details

Related works

Is supplemented by
Dataset: 10.5281/zenodo.18213931 (DOI)

Funding

European Commission
NEMO - NExt-generation MOdels for advanced battery electronics 101102944