快速充电条件下,厚度和孔隙率对丝网印刷石墨/NMC三维结构锂离子电池能量密度的影响

S. Ahmadi, D. Maddipatla, Qingliu Wu, M. Atashbar
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摘要

到目前为止,已经开发了几种打印技术来制造具有不同3D图案的先进电极结构,用于锂离子电池(LIB)应用。在快速充电条件下,沿电极厚度制造通道可以有效地提高锂离子电池的能量密度,减少电极的整体扭曲度,提高离子沿电极厚度的扩散。本文利用COMSOL软件建立了石墨/镍、锰、钴全电池的三维物理电化学模型。所设计的电极在阳极和阴极都有圆柱形通道。研究了在高电流率为6的条件下,孔道对不同厚度和孔隙率电极体积能量密度的影响。仿真结果表明,与没有通道的参考单元相比,具有相同质量负载的图案单元能够将体积能量密度提高2倍以上。研究了孔隙率、厚度和阴极与阳极厚度比等电极性能的影响,结果表明,与具有相同质量负载的薄电极或高多孔电极相比,通道在提高低孔隙率厚电极的能量密度方面更有效。
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Investigating the Impact of Thickness and Porosity on Energy Density of Screen Printed Graphite/NMC LIBs with 3D Structures under Fast Charging Condition
Several printing techniques have been developed so far to fabricate advanced electrode structures with different 3D patterns for lithium ion batteries (LIB) applications. Making channels along the thickness of the electrode has been proved to be effective on energy density enhancement of LIBs by reducing the overall tortuosity in the electrode and improving the ionic diffusion along the electrode thickness, especially under fast charging conditions. In this paper, a 3D physics-based electrochemical model of Graphite/NMC (nickel, manganese, and cobalt) full-cell is developed in COMSOL software. The designed electrodes have cylindrical channels in both anode and cathode. The impact of channels on volumetric energy density of electrodes with different thickness and porosity under high current rate of 6 is investigated. The simulation results demonstrated that compared to reference cell with no channels, the patterned cell with similar mass loading is capable of increasing volumetric energy density by more than 2 times. The impact of electrode properties such as porosity, thickness, and cathode to anode thickness ratio is investigated and showed that the channels are more effective on improving energy density of thick electrodes with low porosities when compared to thin or highly porous electrodes with similar mass loading.
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