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Damage and Delamination Modeling of Multifunctional Composite Structural Batteries

机译:多功能复合结构电池的损伤和分层模拟

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Structural battery composites are capable of storing and delivering electricalenergy and bear structural loads. It is important to analyze the stiffness and strength ofthese composites, particularly in bending loading configurations. Damage of structuralbatteries is of particular importance in structural batteries due to the energy storagecomponent. Two structural battery material systems were considered. The first batterycell uses copper and aluminum foils as electrodes and carbon paper as currentcollectors. The second material system incorporates carbon fiber fabric coated withnickel and iron through electrodeposition as the multifunctional electrodes. These stiffcarbon fiber fabrics provide excellent mechanical properties. For sufficient electricalenergy capacity storage for use as the chassis of a CubeSat, it was calculated thatseven layers per panel would be required. Multi-layer panels consisting of sevenbattery layers as a core with external structural reinforcement were tested. Physicaland virtual three point bend tests were completed on these material systems. PrototypeCu-Al panels were fabricated and tested in a 3 point bend test configuration untilultimate failure. The damage initiation and propagation was analyzed throughqualitative and quantitative analyses. Damage morphology took the form of layerdelamination and material cracking within the battery layers. Computational finiteelement simulations matching the mechanical testing geometry were completed tofurther understand the mechanism involved in the damage of these composites.Simulated Cu-Al panels showed a larger stiffness, however the progression of damagewas well represented in the models. The Ni-Fe carbon fiber battery was superior instiffness and strength. Overall, these composites show promise that these can beutilized as structural materials that store electrical energy.
机译:结构电池复合材料能够存储和输送电气能量和熊结构载荷。分析刚度和力量非常重要这些复合材料,特别是在弯曲加载配置中。结构损坏由于储能,电池在结构电池中特别重要成分。考虑了两个结构电池材料系统。第一个电池电池用铜和铝箔作为电极和碳纸作为电流收藏家。第二材料系统包括涂有碳纤维织物镍和铁通过电沉积作为多功能电极。这些僵硬碳纤维织物提供优异的机械性能。足够的电气能量容量存储用作CubeSat的底盘,计算出来每个面板的七层都需要。由七组成的多层面板测试电池层作为具有外部结构强化的核心。身体的在这些材料系统上完成了虚拟三点弯曲测试。原型在3点弯曲试验配置中制造和测试Cu-Al面板,直至3点最终失败。通过损伤启动和传播定性和定量分析。损伤形态采取了层的形式电池层内的分层和材料裂缝。计算有限与机械测试几何匹配的元素模拟完成进一步了解这些复合材料损坏所涉及的机制。模拟Cu-Al面板显示出更大的刚度,但损坏的进展在模型中很好地代表。 Ni-Fe碳纤维电池优于刚度和力量。总的来说,这些复合材料显示了这些可以的承诺用作存储电能的结构材料。

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