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Advanced Conductive Composite Materials for Spacecraft Application

机译:用于航天器应用的先进的导电复合材料

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In this study, thermal responses of advanced fiber/epoxy matrix composite materials are considered for spacecraft thermal design. These thermal responses are important, because the localized thermal behavior from applied heat loads can induce thermal stresses, which can lead to functional failure of the spacecraft system. Since most of polymer matrices exhibit relatively poor thermal conductivity, the composite materials have been widely considered only for structural application and little for thermal application. However, recently pitch-based high performance carbon fiber becomes available and this fiber shows high thermal conductivity. Because of this combination of low CTE and high thermal conductivity, continuous carbon fiber composites make them suitable for thermal management of spacecraft. The advanced composite material is composed of a continuous high modulus pitch based fiber (YS90A) and DGEBA epoxy resin(RS3232). It was demonstrated that advanced composite material satisfied thermal requirement for a lightweight thermal radiator for heat rejection of communication satellite.
机译:在该研究中,考虑了先进纤维/环氧基质复合材料的热反应用于航天器热设计。这些热响应很重要,因为来自施加热负荷的局部热行为可以诱导热应力,这可能导致航天器系统的功能失效。由于大多数聚合物基质表现出相对较差的导热性,因此复合材料已被广泛地考虑结构应用,并且对于热应用很少。然而,最近俯仰的高性能碳纤维可获得,并且该纤维显示出高导热率。由于这种低CTE和高导热率的组合,连续的碳纤维复合材料使它们适用于航天器的热管理。先进的复合材料由连续的高模量沥青基纤维(YS90A)和DGEBA环氧树脂(RS3232)组成。据证明,用于热抑制通信卫星的轻质热散热器的先进复合材料满足热需求。

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