Influence of Switching on the Aging of High Energy Lithium-Ion Cells

Author:

Straßer Xenia1ORCID,Ngaleu Guy Williams1,Hanzl Christian1ORCID,Azzam Mohamed1ORCID,Endisch Christian1ORCID,Lewerenz Meinert1ORCID

Affiliation:

1. Technische Hochschule Ingolstadt, Research Group Electromobility and Learning Systems, D-85049 Ingolstadt, Germany

Abstract

An AC-battery or multilevel inverter used to increase safety and flexibility is realizable by switching the cells and modules on and off in a defined way and thus can replace the bidirectional converter. Assessing possible additional aging due to switching, the results of a previous study for a high-power optimized cell showed no influence on the current rates or the switching. In this paper, a highly energy-optimized LG 18650-cell is investigated to discuss the influence of switching during the charge and discharge process, respectively, as well as combining both processes together with clear performance differences when applying higher charge and discharge currents. Moreover, the influence of switching is discussed for the two frequencies (50 Hz and 10 kHz) and different duty cycles. The aging is analyzed by capacity loss and resistance increase, by dV/dQ analysis, and by electrochemical impedance spectroscopy. We found no clear negative influence of switching but a positive effect if the cells are switched during charge. The best performance is found for switching during charge as well as during discharge. The cell aging during switching is clearly determined by the average and not the maximum current applied. This work shows no negative effects of multilevel inverter applications on the tested cells.

Funder

Audi AG

German Research Foundation

Open Access Publication Fund of Technische Hochschule Ingolstadt

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Electrochemistry,Energy Engineering and Power Technology

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