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首页> 外文期刊>Journal of Energy Storage >Structural dynamics of lithium-ion cells - Part Ⅰ: Method, test bench validation and investigation of lithium-ion pouch cells
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Structural dynamics of lithium-ion cells - Part Ⅰ: Method, test bench validation and investigation of lithium-ion pouch cells

机译:锂离子电池的结构动力学-第一部分:锂离子袋式电池的方法,试验台验证和研究

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The failure mechanisms that govern the durability of lithium-ion cells under vibration loading are inadequately investigated. It is inevitable for effective durability testing to understand what might determine damage and fatigue. Experimental modal analysis is used to unveil the structural dynamics of lithium-ion pouch cells in terms of natural frequencies, damping ratios, and mode shapes. A test bench for free-free testing has been developed and validated and is presented in this work. Sensitivities from cell parameters such as state of charge, state of health and temperature and from excitation amplitude are revealed. Strong sensitivity of the structural response from excitation amplitude due to nonlinear softening and nonlinear damping was found. Significant softening for increasing temperature with a linear regime, most probably due to changes in the visco-elasticity of the separator, was also observed, while the state of charge showed minor sensitivity. In contrast, cyclic aging caused strongly increased stiffness of the cells. The results can be used for finite element model building to accompany vibration durability research with simulations, to define which parameter sensitivities might determine the level of fatigue during vibration testing and to test the impact of high dynamic stress on lithium-ion pouch cells through resonance excitation.
机译:不足的研究了控制锂离子电池在振动载荷下的耐久性的失效机理。有效的耐用性测试不可避免地要了解可能导致损坏和疲劳的因素。实验模态分析用于揭示锂离子袋式电池在固有频率,阻尼比和模式形状方面的结构动力学。已经开发并验证了用于免费测试的测试台,并在此工作中进行了介绍。揭示了来自电池参数(如充电状态,健康状态和温度)和激发幅度的灵敏度。发现由于非线性软化和非线性阻尼,结构对激励振幅的响应具有很强的敏感性。在线性状态下,随着温度的升高,明显出现了明显的软化现象,这很可能是由于隔板的粘弹性变化所致,而荷电状态则显示出较小的敏感性。相反,循环老化导致细胞刚度大大增加。结果可用于有限元模型构建,以结合振动耐久性研究和仿真,定义哪些参数敏感性可以确定振动测试过程中的疲劳程度,并通过共振激发来测试高动态应力对锂离子袋电池的影响。

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