热失控
核工程
电池(电)
更安全的
材料科学
灾难性故障
能量密度
锂(药物)
热的
法律工程学
计算机科学
复合材料
工程物理
工程类
物理
内分泌学
气象学
功率(物理)
医学
量子力学
计算机安全
作者
Donal P. Finegan,Eric Darcy,Matthew Keyser,Bernhard Tjaden,Thomas M. M. Heenan,Rhodri Jervis,Josh J. Bailey,Nghia T. Vo,Oxana V. Magdysyuk,Michael Drakopoulos,Marco Di Michiel,Alexander Rack,Gareth Hinds,Dan J. L. Brett,Paul R. Shearing
标识
DOI:10.1002/advs.201700369
摘要
Abstract As the energy density of lithium‐ion cells and batteries increases, controlling the outcomes of thermal runaway becomes more challenging. If the high rate of gas generation during thermal runaway is not adequately vented, commercial cell designs can rupture and explode, presenting serious safety concerns. Here, ultra‐high‐speed synchrotron X‐ray imaging is used at >20 000 frames per second to characterize the venting processes of six different 18650 cell designs undergoing thermal runaway. For the first time, the mechanisms that lead to the most catastrophic type of cell failure, rupture, and explosion are identified and elucidated in detail. The practical application of the technique is highlighted by evaluating a novel 18650 cell design with a second vent at the base, which is shown to avoid the critical stages that lead to rupture. The insights yielded in this study shed new light on battery failure and are expected to guide the development of safer commercial cell designs.
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