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作 者:蒋皖 锁要红 胡海 JIANG Wan;SUO Yaohong;HU Hai(College of Mechanical Engineering and Automation,Fuzhou University,Fuzhou,Fujian 350108,China)
机构地区:[1]福州大学机械工程及自动化学院,福建福州350108
出 处:《福州大学学报(自然科学版)》2020年第4期451-457,共7页Journal of Fuzhou University(Natural Science Edition)
基 金:国家自然科学基金资助项目(11902076);福建省科技厅资助项目(2018J01663,2019J01634);福建省教育厅资助项目(JT180026);天大-福大联合基金资助项目(TF2020-2)。
摘 要:具有良好化学稳定性及较高存储容量的多孔材料在锂离子电池及超级电容器中有广泛的应用,但已有的扩散-应力耦合模型大多忽略多孔材料的微观结构.基于此,建立考虑孔隙率和迂曲度的多孔球形电极颗粒中的扩散-应力耦合模型.针对Mn2O4电极进行恒压充电下的数值计算,探讨孔隙率和迂曲度系数对锂离子浓度、径向应力、环向应力及体积应变的影响,并将模型结果与他人结果进行对比.数值结果表明:迂曲度系数越大,电极中锂离子的扩散越差、体积应变越小且径向应力和环向应力越大;孔隙率越大,电极中的锂离子浓度和体积应变越大但径向应力和环向应力越小;多孔电极结构更有利于提高嵌锂能力.因此,应选择孔隙率大且迂曲度系数小的材料作为高存储容量的电极材料.Porous materials with good chemical stability and high storage capacity were widely used in lithium ion batteries and super capacitors.However,the influence of the microstructure of porous materials on diffusion and deformation were ignored in the existed most diffusion-induced stress coupling models.Based on these,a diffusion-stress coupling model in porous spherical electrode particles considering porosity and tortuosity was developed in this work.Then the numerical calculations of Mn2O4 electrode material under potentiostatic operation were carried out to discuss the effects of porosity and tortuosity coefficient on lithium ion concentration,radial stress,hoop stress and volumetric strain,and the model results were compared with others.The simulation results showed that the larger the tortuosity coefficient,the worse the diffusion of lithium ions in the electrode,the smaller the volumetric strain,and the greater the radial and hoop stress.The larger the porosity,the larger the concentration of lithium ion and volumetric strain in the electrode,and the smaller the radial stress and hoop stress in the electrode particles.The porous electrode structure was more favorable to improve the lithium embedding ability.Therefore,the material with a large porosity and a small tortuosity coefficient should be selected as the electrode material with a high storage capacity.
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