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Highly Conductive Carbon Fiber-Reinforced Polymer Composite Electronic Box: Out-Of-Autoclave Manufacturing for Space Applications

机译:高导电碳纤维增强聚合物复合电子盒:用于太空应用的高压灭菌器制造

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One of the main advantages of carbon fiber-reinforced polymer (CFRP) electronic housings, when compared with traditionally used aluminum ones, is the potential for mass savings. In recent years, the power consumption of electronics has been growing, resulting in the need for higher thermal dissipation of electronic housings, requiring the use of highly thermally conductive materials. In this work, the manufacturing of a highly conductive CFRP electronic housing is reported. With a view to reducing total energy costs on manufacturing, an out-of-the autoclave manufacturing process was followed. Due to the inherent low thermal conductivity of typical raw materials for composite materials, strategies were evaluated to increase its value by changing the components used. The use of pitch-based carbon fibers was found to be a very promising solution. In addition, structural, thermal and manufacturing simulations were produced in the design phase. Improved performance was demonstrated from materials manufacturing to final breadboard testing. The results indicate potential gains of around 23% in mass reduction when compared to conventional aluminum electronic boxes. Moreover, the proposed design and the manufactured breadboard showed good compliance with mechanical and electrical requirements for spacecraft structures. The thermal balance results showed a performance slightly below to what would be expected from the detailed design.
机译:与传统使用的铝制外壳相比,碳纤维增强聚合物(CFRP)电子外壳的主要优点之一是可以节省重量。近年来,电子设备的功耗一直在增长,导致对电子外壳的更高散热的需求,要求使用高导热材料。在这项工作中,报道了高导电CFRP电子外壳的制造。为了降低制造过程中的总能源成本,采用了高压釜外制造工艺。由于用于复合材料的典型原材料固有的低导热性,因此评估了通过更改所用组件来增加其价值的策略。发现使用沥青基碳纤维是非常有前途的解决方案。此外,在设计阶段还进行了结构,热和制造模拟。从材料制造到最终面包板测试,性能得到了改善。结果表明,与传统的铝制电子盒相比,质量降低的潜在收益约为23%。此外,建议的设计和制造的面包板显示出对航天器结构的机械和电气要求的良好兼容性。热平衡结果显示性能略低于详细设计所预期的性能。

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