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Numerical Simulation and Experimental Study of Fluid-Solid Coupling-Based Air-Coupled Ultrasonic Detection of Stomata Defect of Lithium-Ion Battery

机译:基于液固耦合的空气耦合超声检测锂离子电池气孔缺陷的数值模拟与实验研究

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摘要

Aiming at the characteristics of the periodic stacking structure of a lithium-ion battery core and the corresponding relationship between the air-coupled ultrasonic transmission initial wave and the wave propagation mode in each layer medium of a lithium-ion battery, the homogenized finite element model of a lithium-ion battery was developed based on the theory of pressure acoustics and solid mechanics. This model provided a reliable method and basis for solving the visualization of ultrasonic propagation in a lithium-ion battery and the analysis of ultrasonic time-frequency domain characteristics. The finite element simulation analysis and experimental verification of a lithium-ion battery with a near-surface stomata defect, near-bottom stomata defect and middle-layer stomata defect were performed. The results showed that the air-coupled ultrasonic transmission signal can effectively characterize the stomata defect inside a lithium-ion battery. The energy of an air-coupled ultrasonic transmission signal is concentrated between 350–450 kHz, and the acoustic diffraction effect has an important influence on the effect of the ultrasonic and stomata defect. Based on the amplitude response characteristics of the air-coupled ultrasonic transmission wave in the stomata defect area, a C-scan of the lithium-ion battery was performed. The C-scan result verified that air-coupled ultrasonic testing technology can accurately and effectively detect the pre-embedded stomata defect and natural stomata defect in a lithium-ion battery, which is able to promote and expand the application of the technology in the field of electric energy security.
机译:针对锂离子电池芯周期性堆叠结构的特点,以及锂离子电池各层介质中空气耦合超声传输初始波与波传播模式之间的对应关系,提出了均质化有限元模型。基于压力声学和固体力学原理,开发了一种锂离子电池。该模型为解决锂离子电池中超声传播的可视化以及超声时频域特征分析提供了可靠的方法和基础。对具有近表面气孔缺陷,近底部气孔缺陷和中层气孔缺陷的锂离子电池进行了有限元模拟分析和实验验证。结果表明,空气耦合超声传输信号可以有效地表征锂离子电池内部的气孔缺陷。空气耦合的超声传输信号的能量集中在350–450 kHz之间,并且声学衍射效应对超声和气孔缺陷的影响具有重要影响。基于气孔缺陷区域中的空气耦合超声传输波的幅度响应特性,对锂离子电池进行了C扫描。 C扫描结果证明,空气耦合超声检测技术可以准确,有效地检测锂离子电池预埋气孔缺陷和自然气孔缺陷,从而可以促进和扩展该技术在该领域的应用。能源安全。

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