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Electromagnetic Interference (EMI) Shielding and Thermal Management of Sandwich-Structured Carbon Fiber-Reinforced Composite (CFRC) for Electric Vehicle Battery Casings

机译:用于电动汽车电池外壳的夹层结构碳纤维增强复合材料 (CFRC) 的电磁干扰 (EMI) 屏蔽和热管理

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摘要

In response to the growing demand for lightweight yet robust materials in electric vehicle (EV) battery casings, this study introduces an advanced carbon fiber-reinforced composite (CFRC). This novel material is engineered to address critical aspects of EV battery casing requirements, including mechanical strength, electromagnetic interference (EMI) shielding, and thermal management. The research strategically combines carbon composite components with copper-plated polyester non-woven fabric (CFRC/Cu) and melamine foam board (CFRC/Me) into a sandwich-structure composite plus a series of composites with graphite particle-integrated matrix resin (CFRC+Gr). Dynamic mechanical analysis (DMA) revealed that the inclusion of copper-plated fabric significantly enhanced the stiffness, and the specific tensile strength of the new composites reached 346.8 MPa/(g/cm3), which was higher than that of other metal materials used for EV battery casings. The new developed composites had excellent EMI shielding properties, with the highest shielding effectives of 88.27 dB from 30 MHz to 3 GHz. Furthermore, after integrating the graphite particles, the peak temperature of all composites via Joule heating was increased. The CFRC+Gr/Me reached 68.3 °C under a 5 V DC power supply after 180 s. This research presents a comprehensive and innovative approach that adeptly balances mechanical, electromagnetic, and thermal requirements for EV battery casings.
机译:为了满足电动汽车 (EV) 电池外壳对轻质而坚固的材料日益增长的需求,本研究介绍了一种先进的碳纤维增强复合材料 (CFRC)。这种新型材料旨在满足 EV 电池外壳要求的关键方面,包括机械强度、电磁干扰 (EMI) 屏蔽和热管理。该研究战略性地将碳复合材料部件与镀铜聚酯无纺布 (CFRC/Cu) 和三聚氰胺泡沫板 (CFRC/Me) 结合成三明治结构复合材料以及一系列具有石墨颗粒集成基体树脂 (CFRC+Gr) 的复合材料。动态力学分析 (DMA) 表明,镀铜织物的加入显著提高了刚度,新型复合材料的比拉伸强度达到 346.8 MPa/(g/cm3),高于用于电动汽车电池外壳的其他金属材料。新开发的复合材料具有出色的 EMI 屏蔽性能,在 30 MHz 至 3 GHz 范围内最高屏蔽效果为 88.27 dB。此外,在对石墨颗粒进行积分后,通过焦耳热提高了所有复合材料的峰值温度。180 s 后,在 5 V DC 电源下,CFRC+Gr/Me 达到 68.3 °C。本研究提出了一种全面的创新方法,巧妙地平衡了 EV 电池外壳的机械、电磁和热要求。

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