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Innovative Insulations for Spacecraft On-surface Monitoring System in Harsh Environments

机译:恶劣环境中航天器围面监测系统的创新绝缘

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The success of any space mission demands an accurate spacecraft monitoring with dependence on various sensors if possible on-surface of the spacecraft to provide critical structural health information in space. NASA has long recognized the significance to have performance monitoring for spacecraft. However, characterized by the properties of microgravity, vacuum, presence of radiation, large thermal variations, mechanical vibrations and shock resulting from the launch, space is well-known as one of the most challenging environment for any sensing system. One of the major challenges is to operate sensors in extreme harsh environments with large temperature variance, which significantly influences sensor's accuracy, reliability, and durability. In this study, innovative multilayer insulation coatings are developed to eliminate the environmental effects and ultimately adjust the sensitivity the sensors towards the parameters needed to be sensed. The developed composite insulation configures innovative metal and nonmetal layers in a single insulation. The design is guided through theoretical and numerical modeling analysis of heat transfer and thermal stress progressing. Detail theoretic, numerical, and experimental analysis proved the feasibility of the proposed multilayer structure of the insulation to work up to 700°C without inducing significant deformation on the top of sensor surface from heat. The developed multilayer composite insulation, thus, enables accurate monitoring capability for spacecraft on-surface monitoring system in harsh service environments.
机译:任何空间任务的成功都需要准确的航天器监测,如果可能的航天器的表面,则可以在各种传感器上进行各种传感器,以在空间中提供临界结构健康信息。美国宇航局长期以来一直识别出对航天器性能监测的重要性。然而,特征在于,通过发射的微匍匐,真空,辐射,辐射的存在,大的热变化,机械振动和冲击,空间是任何传感系统最具挑战性的环境之一。其中一个主要挑战是在具有大温度方差的极端恶劣环境中操作传感器,这显着影响传感器的准确性,可靠性和耐用性。在这项研究中,开发了创新的多层绝缘涂层,以消除环境影响,并最终将传感器朝向所需参数调节灵敏度。开发的复合绝缘材料在单一绝缘层中配置创新的金属和非金属层。通过热传递和热应力的理论和数值建模分析引导设计。详细的理论,数值和实验分析证明了所提出的绝缘结构的可行性,以工作高达700°C,而不会在传感器表面的顶部产生显着变形。因此,开发的多层复合绝缘绝缘能够在恶劣的服务环境中进行准确的航天器上表面监测系统的监控能力。

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