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DESIGN AND FABRICATION OF MULTIFUNCTIONAL STRUCTURE-POWER COMPOSITES FOR MARINE APPLICATIONS

机译:船舶用多功能结构粉复合材料的设计与制备

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Various subsystems in marine applications, especially unmanned underwater vehicles, compete for space. Multifunctional structure-battery (SB) composites combine structure and power functions through the use of high-performance fiber reinforced polymer layers and lithium ion cell batteries, to create volumetric opportunities for increase in overall power generation capacity and/or payload. This paper focuses on the design and fabrication aspects of the SB composites. The design objectives are to achieve or exceed structural performance of traditional marine composites while attaining a volumetric energy density of 50 Wh/L with similar buoyancy levels and dimensional sizes. The design process reveals that all four objectives can be achieved only if the components related to energy storage have the same mechanical and physical properties as the material being replaced. With commercially available batteries, at least three out of four objectives are met for the proposed SB designs. Selection of materials and fabrication methods are heavily influenced by the temperature limit of the battery cells, cell surface preparation for adhesion and load transfer, and power bussing layout. A companion paper addresses multifunctional performance characterization of these composites.
机译:海上应用中的各种子系统,尤其是无人水下航行器,争夺太空。多功能结构电池(SB)复合材料通过使用高性能纤维增强的聚合物层和锂离子电池组电池将结构和功率功能结合在一起,从而创造了增加总发电量和/或有效载荷的体积机会。本文着重于SB复合材料的设计和制造方面。设计目标是达到或超过传统船用复合材料的结构性能,同时以类似的浮力水平和尺寸达到50 Wh / L的体积能密度。设计过程表明,只有与储能相关的组件具有与被替换材料相同的机械和物理特性,才能实现所有四个目标。对于市售电池,建议的SB设计至少满足四个目标中的三个。材料和制造方法的选择在很大程度上受到电池单元温度极限,用于粘合和负载转移的单元表面准备以及电源总线布局的影响。随附论文介绍了这些复合材料的多功能性能表征。

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