Abstract:
Thermal management is one of the significant concerns of the commercial cylindrical 18650
Li-ion battery, as it can affect battery performance, lifespan, and safety. In the present work,
we develop and implement an experimentally validated pseudo-2D lithium-ion battery model
electrochemical coupled with the thermal model to investigate the electrochemical and
thermal behaviour of the commercial 18650 lithium iron phosphate battery made of LiFePO₄
cathode and graphite anode. We integrate a bio-inspired electrolyte channel design into
electrodes to improve thermal performance, especially during high C-rate discharging. This
proposed model is established and simulated by using COMSOL Multiphysics 6.2. Four cell
geometries were analysed for this work: one conventional cell, channel in the positive
electrode, channel in the negative electrode, and channel in both electrodes. We investigate
the effects of electrolyte channel width, thickness, and channel number for designed
geometries on electrochemical and thermal performance. The findings indicate that a specific
set of channel geometrical parameters can significantly reduce battery temperature during
discharging. The addition of an electrolyte channel into the negative electrode with 50 nm
width, 5 µm thickness, and 5 number channels provides optimum thermal performance. It
decreases temperature for 2C and 3C by 8.4% and 5.45%, respectively. This study provides an
electrode design strategy to improve the thermal performance of commercial 18650 Li-ion
batteries.