G. Sordi, A. Rondi, D. Conti, A. Casalegno, C. Rabissi
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引用次数: 0
摘要
电池电动汽车作为交通领域去碳化的一种相关解决方案,正在全球范围内得到推广,它能确保高体积和重量能量密度、高效率和低成本。然而,众所周知,电池的老化过程相当复杂,且与条件有关。这项工作旨在研究接近真实世界条件下的电池老化,突出单一压力因素的作用。因此,为了使其在汽车应用中具有代表性,我们进行了广泛的文献综述,确定了一系列具有代表性的条件及其具体变化。确定了 WLTP 等真实驾驶时间表,并在商用样本上持续循环应用,通过平衡模型从 q-OCP 角度研究容量损失。总体而言,锂库存损失是主要的降解参数,可能与 SEI 增长有关。充电 C 率和负载曲线对降解的影响较小,而工作温度则起主导作用。有趣的是,与温度和循环相关的降解似乎是独立的,它们的影响可以有效叠加。活性正电极材料的损耗似乎特别受循环放电深度的影响,这可能是由于颗粒开裂的机械原因造成的。
Degradation of lithium-ion batteries under automotive-like conditions: aging tests, capacity loss and q-OCP interpretation
Battery electric vehicles are spreading worldwide as a relevant solution for the decarbonization of the transportation sector, ensuring high volume and weight-based energy density, high efficiency and low cost. Nevertheless, batteries are known to age in a rather complex and conditions-dependent way. This work aims at investigating battery aging resulting from close-to-real world conditions, highlighting single stressors role. Hence, aiming at representativeness for automotive application, an extensive literature review is performed, identifying a wide set of representative conditions together with their specific variations to be investigated. Realistic driving schedules like WLTP is identified and continuously applied in cycling on commercial samples, investigating the capacity loss from a q-OCP perspective with an equilibrium model. In general, loss of lithium inventory is detected as the main degradation parameter, likely related to SEI growth. Recharge C-rate and load profile appear as poorly-affecting degradation, while a dominant role is associated with operating temperature. Interestingly, temperature and cycling-related degradation appears to be independent and their effects can be effectively superimposed. Loss of active positive electrode material seems particularly affected by cycling depth of discharge, likely having mechanical origin as particle cracking.