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Gas evolution and the effects on ionic transport inside the lithium-ion battery

机译:气体进化与锂离子电池内离子输送的影响

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PurposeGas evolution within lithium-ion batteries (LIBs) gives rise to safety concerns that question their applicability. The gas evolution is not only the result but also the inducement of performance deterioration of LIBs. In this paper, the growth characteristics and dynamic behavior of gas bubble on the electrode surface are studied, and the interference mechanism of gas evolution on Li-ion diffusion or Li-ion conduction within LIBs is discussed and validated by the numerical simulations.Design/methodology/approachFirst, the mathematical models and simulation method are established. The growth and flow of gas bubble in the serpentine channel on electrode surface, which results from the gas-liquid flow and the effects of surface tension, is modeled by using the multi-phase Navier-Stokes and the volume of fluid method. Integrating Butler-Volmer and Fick's law, the mathematical model of ions transport in the electrochemical cell is set-up. Second, the motion of gas bubble is tracked, and the variations of bubble shape and characteristic parameters with time are obtained by the computed fluid dynamics (CFD) method.FindingsBased on the CFD results, the battery models and electrochemical simulations are carried out to analyze the ionic transport characteristics. The results show that the microstructural morphology such as the serpentine channel shape and size on electrode surface are important aspects for the gas bubble growth and the local ionic transport. Li ions significantly accumulate at one side of the gas obstacle, hindering the ionic diffusion normally. When the gas bubble blocks the electrolyte, the passage of ions from the positive to the negative is interrupted, and the open circuit zone of the electrochemical cell is formed.Originality/valueThe gas evolution within LIBs is not only a result but also an inducement of its performance deterioration. The primary issues in this study are the growth characteristics and dynamic behavior of gas bubble on the electrode surface, providing the knowledge for the interference mechanism of gas evolution on ionic transport and ultimately leads to significant increase of battery resistance.
机译:锂离子电池(LIBS)内的目的演化引起了质疑其适用性的安全问题。气体进化不仅是结果,而且是Libs的性能恶化的诱导。在本文中,研究了电极表面上的气泡的生长特性和动态行为,并通过数值模拟讨论并验证了Li-离子扩散或Li离子传导的气体进化的干扰机理.Design/方法/接近方法,建立了数学模型和仿真方法。通过使用多相Navier-Stokes和流体方法的体积来建模电极表面上的蛇形通道中的蛇纹石通道中的气泡的生长和流动。集成巴特勒 - Volmer和Fick的法律,电化学电池中的离子输送的数学模型是建立的。其次,跟踪气泡的运动,并且通过计算的流体动力学(CFD)方法获得气泡形状和具有时间的特征参数的变化。在CFD结果上进行,电池模型和电化学模拟进行分析离子传输特性。结果表明,电极表面上蛇形通道形状和尺寸的微观结构形态是气泡生长和局部离子转运的重要方面。李离子在气体障碍物的一侧显着积聚,妨碍了离子扩散正常。当气泡阻断电解质时,离子从正到负面的通过被中断,并且形成电化学电池的开路区。在Libs内的valigality / Valuele气体进化不仅是结果,而且是一个结果,而且是诱导的它的性能恶化。本研究中的主要问题是电极表面上气泡的生长特性和动态行为,为气体输出的干扰机理提供了对离子运输的知识,并最终导致电池电阻的显着增加。

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