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Lithium-ion batteries usually consist of numerous individual cells. There is ongoing discussion about enhancing sustainability by considering the replacement of heavily aged or damaged cells. Nevertheless, the planned replacement of individual cells poses significant challenges in ensuring the required reliability and safety of the refurbished device.
AbstractLithium‐ion cells connected in series are prone to an electrical safety risk called overdischarge. This paper presents a comprehensive investigation of the overdischarge phenomenon in lithium‐ion cells using operando nondestructive imaging. The study focuses on understanding the behavior of copper dissolution and deposition during overdischarge, which can lead to irreversible capacity loss and internal short‐circuits. By utilizing synchrotron X‐ray computed tomography (SXCT), the concentration of dissolved and deposited copper per surface area is quantified as a function of depth of discharge, confirming previous findings. The results also highlight for the first time a nonuniform distribution pattern for copper deposition on the cathode. This research provides insights for safer battery cell design.
Due to their increasing energy density, lithium-ion-batteries (LIBs) play a key role in the traffic energy transition. Regarding their safety behavior, the main challenge of LIB-cells remains the thermal runaway (TR) process. In situ/operando investigations of the TR on commercial cells is possible with radiographic and computer tomographic measurements. Nonetheless, high resolution visualization of the TR persists as a challenge due to the high progression speed of the TR-process itself. Generally, performing abuse tests at cryogenic temperatures allows to slow down or even prevent the TR. Nevertheless, not all abuse methods are suitable for TR investigations at low temperatures. Nail penetration is an appropriate option, however, contains numerous unknown parameters and therefore suffers regarding reproducibility.
Herein, a self-developed high precision nail-penetration-setup is introduced, approaching the necessary mechanically reproducibility with controlled temperatures down to -190°C. The setup allows the preparation of critically abused, however, at cryogenic temperatures stable LIB-cells. These cells were controlled rethermalized to room temperature during synchrotron x-ray computer tomography (SXCT) with a pixel size up to 0.7 μm. During this measurement, the temperature and voltage of the cell is monitored allowing the visualization of the initial internal cell reactions. This study reveals the relation between internal reactions and cell voltage. Finally, the developed set-up enables in-depth analysis of thermal runaway behavior down to material level for various commercial battery cells in the future.
Next to performance features, safety aspects of lithium-ion batteries (LIBs) are a crucial research field. The abuse/misuse of a LIB can trigger a chain of exothermic reactions on cell level. Hence, the cell temperature increases dramatically, causing the so-called thermal runaway (TR). Moreover, the TR of one cell can initiate the TR of adjacent cells leading to a TR-propagation. Due to the risk of a TR, special measures need to be applied while handling, storing, and transporting batteries. According to current transport regulations, all different types of lithium-ion and lithium metal cells/batteries (by means of cell format, cathode chemistry, etc.) require the same transport conditions regardless of the intensity of their reaction during abuse tests. To allow more differentiated transport requirements, the United Nations (UN) Subcommittee Transport of Dangerous Goods created an Informal Working Group (IWG) on the topic of a hazard-based classification of LIBs. BAM is one of nine laboratories working on the development of a respective classification scheme including appendant test protocols.
Herein, we discuss the latest results of our safety tests on commercial LIB-cells employing the test protocols developed in the UN-IWG. Single cell tests are analysed regarding different hazardous features during the TR, e.g., cell temperature, flame occurrence, and gas amount. Next to the general occurrence of a propagation, the propagation speed is analysed by propagation tests. In total, the presented results are gathered from over 200 tests. Next to the classification of the tested cells, the data set obtained is analysed in respect to the cells’ key features, such as cell energy, state of charge and cathode type. Generally, the presented results can increase the overall understanding of the TR-mechanism supporting the design of advanced safety measures on cell level in the future.