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How electrode thicknesses influence performance of cylindrical lithium-ion batteries
•An electrochemical-thermal coupled model is developed to study the performance of the batteries.•The electrode thickness has significant effect on the electric and thermal performance of the batteries.•A linear relationship is found between the maximum temperature and the thermal conversion efficie...
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Published in: | Journal of energy storage 2022-02, Vol.46, p.103827, Article 103827 |
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Main Authors: | , , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | •An electrochemical-thermal coupled model is developed to study the performance of the batteries.•The electrode thickness has significant effect on the electric and thermal performance of the batteries.•A linear relationship is found between the maximum temperature and the thermal conversion efficiency.•The thermal conversion efficiency is a crucial parameter that determines the temperature distribution.
A design of anode and cathode thicknesses of lithium-ion batteries is a dilemma owing to the facts: 1) increasing the electrodes thicknesses is able to improve the energy density, but the thermal characteristics become worse and vice versa; and 2) the method of quantitative evaluation of the design lacks basically. In this work, an electrochemical-thermal coupled model is developed to systematically study the battery performance including electrical and thermal behaviors. Based on the on-line energy efficiency and thermal energy conversion efficiency, a method is proposed to evaluate the adjustments of anode and cathode thicknesses through comparison of the battery's electrical and thermal performance. Results show that the electrode thickness has significant influences on discharge performance, heat generation and temperature distribution. The effects of the electrode thickness on the energy efficiency and the thermal energy conversion efficiency are quantitatively discussed, respectively. The thermal energy conversion efficiency and the max temperature rise as target boundary conditions are proposed to optimize the design of lithium-ion batteries. |
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ISSN: | 2352-152X 2352-1538 |
DOI: | 10.1016/j.est.2021.103827 |