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锂离子电池的劣化:力-电化学耦合机理与模型
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作者 吕浡 陈鑫松 +2 位作者 周志宇 宋亦诚 张俊乾 《力学季刊》 CAS CSCD 北大核心 2024年第2期287-308,共22页
锂离子电池在充放电循环过程中会不可避免地发生容量衰减,这种性能劣化现象普遍存在,且符合人们的日常认知.然而,显而易见的电池劣化现象背后的机理则是相当复杂.本文首先分别从颗粒尺度和电极尺度入手,对锂离子电池的多尺度-多场-多过... 锂离子电池在充放电循环过程中会不可避免地发生容量衰减,这种性能劣化现象普遍存在,且符合人们的日常认知.然而,显而易见的电池劣化现象背后的机理则是相当复杂.本文首先分别从颗粒尺度和电极尺度入手,对锂离子电池的多尺度-多场-多过程的力-电化学耦合劣化机理进行了梳理,其中对固态电池的劣化进行了单独的讨论.进一步地,本文梳理了用以描述锂离子电池力-电化学耦合劣化行为的劣化模型.需要指出的是,由于电池劣化机理的复杂性和外部可测量的稀缺性,建立劣化模型是具有挑战性的,且目前仍存在巨大的研究空白.基于此,本文提出了一种双向劣化模型的设想,融合物理模型和数据模型,以具有一定物理意义的内变量为纽带,建立围绕内变量的“力学行为-内变量-劣化行为”完整映射,为客观、准确地描述和预测电池劣化行为提供新思路. 展开更多
关键词 锂离子电池 性能劣化 力-电化学耦合 机理 物理模型 数据模型
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任意方向可弯的锂离子电池压印柔性厚电极
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作者 张博畅 高化东 +2 位作者 徐沈鑫 鲍垠桦 吕浡 《上海大学学报(自然科学版)》 CAS CSCD 北大核心 2024年第5期980-988,共9页
提出半固化电极的机械压印方法制备锂离子电池压印柔性厚电极,兼顾了厚电极的高储能性能和高柔性.在基本不改变锂离子电池电极传统湿法制备工艺的前提下,在电极干燥阶段引入机械压印步骤,从而在数百微米厚的电极中构建网络通道结构,使... 提出半固化电极的机械压印方法制备锂离子电池压印柔性厚电极,兼顾了厚电极的高储能性能和高柔性.在基本不改变锂离子电池电极传统湿法制备工艺的前提下,在电极干燥阶段引入机械压印步骤,从而在数百微米厚的电极中构建网络通道结构,使电极获得了任意方向可弯的能力.进一步,基于有限元分析给出压印厚电极在不同弯曲方向下的临界弯曲半径.此外,压印引入的网络通道结构提升电极内的离子传输效率,使全电池实验中压印厚电极在高倍率下的电化学性能显著优于常规厚电极,且电池在弯曲状态下拥有良好且稳定的电化学性能.研究结果为高性能多功能储能电池的研发提供了基于电极结构设计的新思路. 展开更多
关键词 压印 厚电极 柔性 离子通道 锂离子电池
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锂离子电池电极材料的断裂现象及其研究进展 被引量:8
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作者 张俊乾 吕浡 宋亦诚 《力学季刊》 CSCD 北大核心 2017年第1期14-33,共20页
锂离子电池中的多场耦合问题是目前研究的热点,其中电极材料的断裂行为更是目前固体力学的研究前沿.锂离子电池电极材料的断裂现象与电池性能退化存在密切关系,是锂离子电池中的核心力学问题之一,也是研究电池力学-电化学耦合失效的关... 锂离子电池中的多场耦合问题是目前研究的热点,其中电极材料的断裂行为更是目前固体力学的研究前沿.锂离子电池电极材料的断裂现象与电池性能退化存在密切关系,是锂离子电池中的核心力学问题之一,也是研究电池力学-电化学耦合失效的关键课题.本文从锂离子电池的结构和组成入手,介绍了电极材料断裂与电池充放电过程中电化学性能退化的相关机理,综述了观测电极材料断裂的实验现象,并重点评述了锂离子电池电极材料断裂的理论模型与数值分析等方面的最新国际研究进展.最后本文给出了这方面今后应进一步研究的问题. 展开更多
关键词 锂离子电池 电极 断裂 电池老化 扩散诱导应力 力学-电化学耦合
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锂离子电池充电中断诱导的应力演化 被引量:4
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作者 赵炎翡 吕浡 《机械强度》 CAS CSCD 北大核心 2018年第1期77-82,共6页
通过求解一般形式初值条件的扩散方程,得到恒流、恒压以及充电中断时的浓度演化,进而得到扩散诱导应力演化的解析表达式。基于解析模型,分别探究了发生在恒流阶段和恒压阶段的充电中断。充电中断时应力发生松弛,充电恢复时应力快速增加... 通过求解一般形式初值条件的扩散方程,得到恒流、恒压以及充电中断时的浓度演化,进而得到扩散诱导应力演化的解析表达式。基于解析模型,分别探究了发生在恒流阶段和恒压阶段的充电中断。充电中断时应力发生松弛,充电恢复时应力快速增加,从而必然导致一次应力涨落,对电池寿命不利。研究结果发现,中断时间越长,由充电中断导致的应力涨落就更为剧烈。另一方面,接近恒流-恒压转换时刻的中断会导致较严重的应力涨落。此外,还发现在恒流阶段发生中断导致的应力涨落比恒压阶段严重。 展开更多
关键词 应力演化 充电中断 恒流充电 恒压充电 锂离子电池
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Understanding the Li diffusion mechanism and positive effect of current collector volume expansion in anode free batteries 被引量:3
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作者 Yan Zhuang Zheyi Zou +4 位作者 Bo Lu Yajie Li Da Wang Maxim Avdeev Siqi Shi 《Chinese Physics B》 SCIE EI CAS CSCD 2020年第6期17-24,共8页
In anode free batteries(AFBs), the current collector acts as anode simultaneously and has large volume expansion which is generally considered as a negative effect decreasing the structural stability of a battery. Mor... In anode free batteries(AFBs), the current collector acts as anode simultaneously and has large volume expansion which is generally considered as a negative effect decreasing the structural stability of a battery. Moreover, despite many studies on the fast lithium diffusion in the current collector materials of AFB such as copper and aluminum, the involved Li diffusion mechanism in these materials remains poorly understood. Through first-principles calculation and stress-assisted diffusion equations, here we study the Li diffusion mechanism in several current collectors and related alloys and clarify the effect of volume expansion on Li diffusion respectively. It is suggested that due to the lower Li migration barriers in aluminum and tin, they should be more suitable to be used as AFB anodes, compared to copper, silver, and lead. The Li diffusion facilitation in copper with a certain number of vacancies is proposed to explain why the use of copper with a thickness≤100 nm as the protective coating on the anode improves the lifetime of the batteries. We show that the volume expansion has a positive effect on Li diffusion via mechanical–electrochemical coupling. Namely, the volume expansion caused by Li diffusion will further induce stress which in turn affects the diffusion. These findings not only provide in-depth insight into the operating principle of AFBs, but also open a new route toward design of improved anode through utilizing the positive effect of mechanical–electrochemical coupling. 展开更多
关键词 anode free battery current collector Li diffusion mechanism mechanical-electrochemical coupling stress-assisted diffusion
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Review on electrode-level fracture in lithium-ion batteries 被引量:1
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作者 Bo Lu Chengqiang Ning +2 位作者 Dingxin Shi Yanfei Zhao Junqian Zhang 《Chinese Physics B》 SCIE EI CAS CSCD 2020年第2期45-58,共14页
Fracture occurred in electrodes of the lithium-ion battery compromises the integrity of the electrode structure and would exert bad influence on the cell performance and cell safety.Mechanisms of the electrode-level f... Fracture occurred in electrodes of the lithium-ion battery compromises the integrity of the electrode structure and would exert bad influence on the cell performance and cell safety.Mechanisms of the electrode-level fracture and how this fracture would affect the electrochemical performance of the battery are of great importance for comprehending and preventing its occurrence.Fracture occurring at the electrode level is complex,since it may involve fractures in or between different components of the electrode.In this review,three typical types of electrode-level fractures are discussed:the fracture of the active layer,the interfacial delamination,and the fracture of metallic foils(including the current collector and the lithium metal electrode).The crack in the active layer can serve as an effective indicator of degradation of the electrochemical performance.Interfacial delamination usually follows the fracture of the active layer and is detrimental to the cell capacity.Fracture of the current collector impacts cell safety directly.Experimental methods and modeling results of these three types of fractures are concluded.Reasonable explanations on how these electrode-level fractures affect the electrochemical performance are sorted out.Challenges and unsettled issues of investigating these fracture problems are brought up.It is noted that the state-of-the-art studies included in this review mainly focus on experimental observations and theoretical modeling of the typical mechanical damages.However,quantitative investigations on the relationship between the electrochemical performance and the electrode-level fracture are insufficient.To further understand fractures in a multiscale and multi-physical way,advancing development of the cross discipline between mechanics and electrochemistry is badly needed. 展开更多
关键词 FRACTURE ELECTRODE LITHIUM-ION BATTERY
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