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Mixed Modes Fracture and Fatigue Evaluation for Lithium -ion Batteries

机译:锂离子电池混合模式断裂和疲劳评估

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Lithium ion batteries have become a widely known commodity for satisfying the world's mobile energy storage needs. But these needs are becoming increasingly important, especially in the transportation industry, as concern for rising oil prices and environmental impact from fossil fuels are pushing for deployment of more electric vehicles (EV) or plug in hybrid- electric vehicles (PHEV) and renewable energy sources. The objective of this research is to obtain a fundamental understanding of degradation mechanisms and rate-capacity loss in lithium-ion batteries through fracture mechanics and fatigue analysis approaches. In this study we follow empirical observations that mechanical stresses accumulate on electrode materials during the cycling process. Crack induced fracturing will then follow in the material which electrical contact surface area is degraded and over capacitance of the battery reduces. A fatigue analysis simulation is applied using ANSYS finite element software coupled with analytical models to alleviate these parameters that play the most pivotal roles in affecting the rate-capacity and cycle life of the lithium-ion battery. Our results have potential to provide new models and simulation tools for clarifying the interplay of structure mechanics and electrochemistry while offering an increased understanding of fatigue degradation mechanisms in rechargeable battery materials. These models can aid manufacturers in the optimization of battery materials to ensure longer electrochemical cycling life with high-rate capacity for improved consumer electronics, electric vehicles, and many other military or space applications.
机译:锂离子电池已经成为满足世界移动能量存储需求的一种广为人知的商品。但是,这些需求变得越来越重要,尤其是在交通运输行业,因为人们对油价上涨和化石燃料对环境的影响正在推动部署更多的电动汽车(EV)或插电式混合动力汽车(PHEV)和可再生能源资料来源。这项研究的目的是通过断裂力学和疲劳分析方法,对锂离子电池的降解机理和速率容量损失有一个基本的了解。在这项研究中,我们遵循的经验观察表明,在循环过程中,机械应力会累积在电极材料上。然后,将在材料中产生裂纹引起的破裂,该材料的电接触表面积降低并且电池的过电容减小。使用ANSYS有限元软件结合分析模型进行疲劳分析模拟,以缓解这些参数,这些参数在影响锂离子电池的倍率容量和循环寿命方面起着至关重要的作用。我们的结果有可能提供新的模型和仿真工具,以阐明结构力学和电化学之间的相互作用,同时使人们对可再充电电池材料的疲劳降解机理有更多的了解。这些模型可以帮助制造商优化电池材料,以确保更长的电化学循环寿命以及高倍率的容量,从而改善消费类电子产品,电动汽车以及许多其他军事或太空应用。

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